2025 ACG临床指南:胃癌前病变的诊断和管理
**原文标题**: 2025 ACG临床指南:胃癌前病变的诊断和管理
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ACG Clinical Guideline: Diagnosis and Management of
Gastric Premalignant Conditions
Douglas R. Morgan, MD, MPH, FACG1, Juan E. Corral, MD, MPH2, Dan Li, MD3,4, Elizabeth A. Montgomery, MD5, Arnoldo Riquelme, MD6,
John J. Kim, MD, FACG7, Bryan Sauer, MD, MSc, FACG8 and Shailja C. Shah, MD, MPH9,10
Gastric premalignant conditions (GPMC) are common and include atrophic gastritis, gastric intestinal metaplasia,
dysplasia, and certain gastric epithelial polyps. GPMC have an increased risk of progression to gastric adenocarcinoma.
Gastric cancer (GC) in the United States represents an important cancer disparity because incidence rates are 2- to
13-fold greater in non-White individuals, particularly early-generation immigrants from regions of high GC incidence.
The US 5-year survival rate for GC is 36%, which falls short of global standards and is driven by the fact that only a small
percentage of GC in the US is diagnosed in the early, curable stage. This document represents the first iteration of
American College of Gastroenterology guidelines on this topic and encompasses endoscopic surveillance for high-risk
patients with GPMC, the performance of high-quality endoscopy and image-enhanced endoscopy for diagnosis and
surveillance, GPMC histology criteria and reporting, endoscopic treatment of dysplasia, the role of Helicobacter pylori
eradication, general risk reductionmeasures, and the management of autoimmune gastritis and gastric epithelial polyps.
There is insufficient evidence to make a recommendation on upper endoscopic screening for GC/GPMC detection in US
populations deemed high-risk for GC. Surveillance endoscopy is recommended for individuals at high risk for GPMC
progression, as defined by endoscopic, histologic, and demographic factors, typically every 3 years, but an individualized
interval may be warranted. H. pylori testing, treatment, and eradication confirmation are recommended in all individuals
with GPMC. Extensive high-quality data from US populations regarding GPMC management are lacking, but continue to
accrue, and the quality of evidence for the recommendations presented herein should be interpreted with this dynamic
context in mind. The GPMC research and education agendas are broad and include high-quality prospective studies
evaluating opportunistic endoscopic screening for GC/GPMC, refined delineation of what constitutes “high-risk”
populations, development of novel biomarkers, alignment of best practices, implementation of training programs for
improved GPMC/GC detection, and evaluation ofthe impact oftheseinterventions onGCincidence and mortality intheUS.
KEYWORDS:gastric premalignant conditions (GPMC); gastric intestinal metaplasia (GIM); gastric atrophy; H. pylori; gastric cancer; clinical
guideline
SUPPLEMENTARY MATERIAL accompanies this paper at http://links.lww.com/AJG/D556, http://links.lww.com/AJG/D557, http://links.lww.com/AJG/D558, http://links.
lww.com/AJG/D559
Am J Gastroenterol 2025;00:1–29. https://doi.org/10.14309/ajg.0000000000003350
INTRODUCTION
Gastric cancer (GC) is the leading infection-associated cancer and
the fourth leading cause of cancer-related mortality globally, with
more than 1 million new cases diagnosed and more than 768,000-
related deaths in 2020 (1,2). There is marked variation in GC
incidence globally, with the highest incidence rates reported in
Eastern Asia, Eastern Europe, and Latin America (2). The overall
United States is considered a low-incidence country with an age
standardized incidence rate (ASIR) of 6.5 per 100,000 person-
years with an estimated 26,890 new cases and 10,088-related
deaths in 2023 (3). However, specific US populations, such as
immigrants from high-GC incidence countries and certain non-
White populations, have substantially higher GC incidence rates,
with rates exceeding those for esophageal cancer and in some
cases approaching those for colorectal cancer (4,5,230). Several
studies and meta-analyses indicate that GC risk and mortality are
maintained among immigrants from high-incidence to low-
incidence countries (6), with incidence rates ranging from 2- to
1Division of Gastroenterology, The University of Alabama at Birmingham, Birmingham, Alabama, USA; 2Division of Gastroenterology, Prisma Health, Greenville,
South Carolina, USA; 3Department of Gastroenterology, Kaiser Permanente Medical Center, Santa Clara, California, USA; 4Kaiser Permanente Northern California
Division of Research, Oakland, California, USA; 5Department of Pathology, University of Miami Miller School of Medicine, Miami, Florida, USA; 6Department of
Gastroenterology, Faculty of Medicine, Pontificia Universidad Cat´olica de Chile, Center for Control and Prevention of Cancer (CECAN), Santiago, Chile; 7Division of
Gastroenterology, Los Angeles General Medical Center, Los Angeles, California, USA; 8Division of Gastroenterology, University of Virginia, Charlottesville, Virginia,
USA; 9Division of Gastroenterology, University of California, San Diego, La Jolla, California, USA; 10Gastroenterology Section, Jennifer Moreno Veterans Affairs
Medical Center, La Jolla, California, USA. Correspondence: Douglas R. Morgan, MD, MPH, FACG. E-mail: drmorgan@uabmc.edu.
Received January 2, 2024; accepted December 13, 2024; published online March 12, 2025
© 2025 by The American College of Gastroenterology
The American Journal of GASTROENTEROLOGY
CLINICAL GUIDELINE
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13-fold higher in specific non-White populations compared with
non-Hispanic White individuals (7,8). GC ranks among the top 8
leading causes of cancer death in US Hispanic and Asian
American populations, compared with ranking 15th in the overall
US population (9). Based on 2020 data from the Pew Research
Center, more than 40 million people living in the United States
were born in another country, with over 70% immigrating from
high-incidence GC countries (6). By 2065, it is estimated that
Asian and Hispanic individuals, the immigrant groups with the
highest GC risk, will comprise nearly 70% of the US population.
Although GC represents a major cancer disparity in the Uni-
ted States, this cancer has long been underrecognized as a public
health concern. There is a growing bodyof evidencedemonstrating
that the burden of GC in high-risk populations is sufficiently high
tojustifypreventionandearlydetectioninterventions.Thereis also
evidence from US populations that Helicobacter pylori treatment is
associated with reduced GC incidence (10,11). A combination of
primary prevention strategies with the H. pylori “screen and
eradicate” approach for reducing GC incidence, and secondary
prevention strategies predominantly focused on early detection of
GPMC/GC through endoscopic screening and surveillance of
precancerous conditions, seems to be the optimal approach to re-
ducing GC mortality as has been clearly demonstrated in Asian
countries. However, the potential impact of implementation of
precision strategies on GC incidence and mortality in US pop-
ulations is unknown given the lack of national data.
Gastric adenocarcinoma, in most cases, is preceded by a typi-
cally asymptomatic precancerous cascade of discrete histopatho-
logical stages and is therefore amenable to surveillance—analogous
to the practice of endoscopic and colonoscopic surveillance of
esophageal and colorectal precancerous conditions, respectively.
These histopathologic stages, referred to as the “Correa cascade,”
progress from normal mucosa and chronic gastritis to atrophic
gastritis (AG), multifocal AG (MAG), gastric intestinal metaplasia
(GIM), low-grade or high-grade dysplasia (LGD/HGD), and fi-
nally, adenocarcinoma. H. pylori is the dominant risk factor for
noncardia gastric adenocarcinoma, the most common form of GC,
with an attributable risk of 75%–89% (12). AG, GIM, and dysplasia
constitute gastric premalignant conditions (GPMC). Early gastric
cancer (EGC) is defined as adenocarcinoma that has not invaded
pastthe submucosal layer,irrespectiveoflymph nodeinvolvement,
and resection is typically curative (.95% 5-year overall survival)
(13). This multifactorial process is driven by H. pylori virulence
factors, thecumulative duration of H. pyloriinfection,hostgenetics
and responses to H. pylori infection, and dietary and environ-
mental factors, such as tobacco exposure. Although the multifac-
torial stages of the Correa cascade best align with intestinal GC, the
principles herein apply to diffuse GC, albeit with an alternate bal-
ance of host genetic, microbial, and environmental factors. High-
risk populations for GPMC parallel high-risk populations for GC.
The risk factors for prevalent GPMC, GPMC progression to GC,
and GC overlap and yet have differences, which are areas of active
investigation.
The focus of this clinical guideline is the diagnosis and man-
agement of GPMC, with noncardia gastric adenocarcinoma being
the primary outcome of interest unless otherwise stated. The
diagnosis of GPMC in the US necessitates upper endoscopy, and
thus, guidance regarding which asymptomatic individuals war-
rant upper endoscopy for GPMC and GC diagnosis and risk
stratification is relevant. In this first iteration of the American
College of Gastroenterology (ACG) clinical guideline on GPMC,
we first discuss methodology, followed by a review of GC
screening, diagnosis of GPMC, endoscopic and nonendoscopic
management of GPMC, and then conclude with 2 special topic
sections on the diagnosis and management of autoimmune gas-
tritis (AIG) and gastric epithelial polyps (GEP) because respective
subsets of these patients have an increased risk of GC. Extensive
high-quality data from US populations regarding GPMC man-
agement are lacking but continue to accumulate; the quality of
evidence for the recommendations presented herein should be
interpreted with this dynamic context in mind.
METHODS
This document presents official recommendations from the ACG
on the diagnosis, management, and surveillance of GPMC in
adults. These guidelines are established to support clinical prac-
tice and suggest preferable approaches to a typical patient with
a particular medical problem based on the currently available
published literature. When exercising clinical judgment, particu-
larly when treatments pose significant risks, healthcare providers
should incorporate this guideline in addition to patient-specific
medical comorbidities, health status, and preferences to arrive at
apatient-centeredcareapproach thatmaximizesbenefit to patients
and minimizes harm.
The guideline is structured in the format of statements that
were considered to be clinically important by the content authors
and were approved by the Governing Board. The Grading of
Recommendations, Assessment, Development, and Evaluation
(GRADE) process was used to assess the quality of evidence for
each statement (Table 1)(14). The quality of evidence is expressed
as high (we are confident in the effect estimate to support a par-
ticular recommendation), moderate, low, or very low (we have
very little confidence in the effect estimate to support a particular
recommendation) based on the risk of bias of the studies, evi-
dence of publication bias, heterogeneity among studies, di-
rectness of the evidence, and precision of the estimate of effect
(15). A strength of recommendation is given as either strong
(recommendations) or conditional (suggestions) based on the
quality of evidence, risks vs benefits, feasibility, and costs taking
into account perceived patient-based and population-based fac-
tors (16). Furthermore, a narrative evidence summary for each
section provides important definitions and further details for the
data supporting the statements.
The ACG Practice Parameters Committee and ACG leadership
identified and approved a group of experts in the area of GC and
GPMC for the writing group. The writing group formulated PICO
questions to guidethe subsequent literature search,development of
recommendation statements and key concepts, GRADE assess-
ments, and the preparation of the full-guideline document. The
PICO questions and subsequent recommendations were reviewed
and approved by 2 GRADE methodologists. The authors, in con-
sultation with a certified medical librarian, conducted an electronic
search using MEDLINE, EMBASE, and the Cochrane Library
through October 2023, with literature update through August
2024. The search was limited to English language and fully pub-
lished articles. For each PICO question developed, the authors
reviewed the existing literature, with a focus on studies of the
highest quality of evidence (e.g., when available, systematic reviews
and meta-analyses, followed by randomized controlled trials
[RCTs], and followed by observational studies). In addition to the
GRADE recommendations, the content authors generated key
concept statements, which are not amenable to GRADE
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Morgan et al
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assessment. We prioritized evidence from US populations, and
where US data were limited or lacking, we relied on high-quality
datafromnon-USpopulations,whichis acknowledged in the main
text where relevant. Tables 2 and 3 summarize the recom-
mendations and key concept statements, respectively. Table 4
details hereditary GC risk factors. The following topics are beyond
the scope of this guideline: management of hereditary GC syn-
dromes, GIM of the cardia, nonadenocarcinoma GC, gastric
mucosa-associated lymphoid tissue lymphoma, therapeutic man-
agement of GC including endoscopic resection, and postdiagnostic
management of GC other than H. pylori eradication.
This is the first iteration of this ACG guideline, and it is
expected that the quality of evidence informing the respective
recommendations will significantly increase. We anticipate and
hope that robust data from the US will continue to accumulate
and inform future iterations of this topic guideline, especially data
related to opportunistic screening, risk stratification, and out-
comes of endoscopic surveillance.
SCREENING OF GC AND GPMC
Recommendations: GC screening
1. We suggest against routine screening with upper endoscopy for
GC and GPMC in the general population in the United States (Very
low quality of evidence, conditional recommendation).
2. We cannot make a recommendation on opportunistic screening
for GC and GPMC with upper endoscopy in individuals considered
high-risk for GC based on immigration status, race and ethnicity,
and certain environmental factors due to insufficient direct
evidence from US populations (Insufficient evidence, no
recommendation).
Risks factors for GC in US populations
The United States is considered a low-intermediate GC incidence
country overall, with an ASIR of 6.5 per 100,000 person-years.
However, in certain US populations, the incidence rates of GC are
2–13 times higher vs White individuals (230). Multiple factors are
associated with an increased risk of GC, including precancerous
gastric mucosal changes (e.g., MAG, GIM, and dysplasia), non-
White race or Hispanic ethnicity, early-generation immigrant
from a high-GC incidence region, family history of GC, specific
inherited cancer syndromes, persistent H. pylori infection, to-
bacco smoking, and possibly AIG (6,8,17,18). Other than H. py-
lori infection, the attributable risk of these factors for GC alone
and in combination, as well as the interaction with other envi-
ronmental factors such as smoking and diet, is not known.
Race, ethnicity, and immigration history
GC varies substantially by race and ethnicity. GC ranks among
the top 8 leading causes of cancer death in US Hispanic and Asian
American populations, compared with ranking 15th in the overall
US population (9). Compared with non-Hispanic White indi-
viduals, East Asian and Pacific Islander, Black, Hispanic, and
American Indian and Alaska Native (AIAN) individuals have
significantly higher incidence of noncardia gastric adenocarci-
noma (NCGA) (7,9). A population-based study using California
Cancer Registry data reported that age-standardized and sex-
standardized incidence of NCGA among individuals of 50 years
or older (i.e., a screening-age population) was 1.8- to 13.3-fold
higher in the most populous non-White groups compared with
non-Hispanic White individuals (5). In fact, the incidence rates of
NCGA in certain groups, such as Japanese Americans (33.6
[27.0–41.4] per 100,000 person-years) and Korean Americans
(70.0 [60.5–80.5] per 100,000 person-years) were similar or
considerably higher than the incidence rates of colorectal cancer
among the general US population (230).
Table 1. Grading of Recommendations, Assessment,
Development, and Evaluation: strength of recommendations,
quality of evidence, and implications for the patients and
clinicians (14–16)
Strength of
recommendation
Criteria
Factors influencing the strength of the
recommendation include the quality of the
evidence, clinical-reported and patient-
reported outcomes, risk of harm, and costs
Strong
Strong recommendations are offered when the
desirable effects of an intervention clearly
outweigh the undesirable effects
Implications from a patient and clinician
perspective:
• Patients: Most people in this situation would
want the recommended course of action, and
only a small proportion would not
• Clinicians: Most patients should receive the
recommended course of action
Conditional
Conditional recommendations are offered when
trade-offs are less certain—either because of
low-quality evidence or because evidence
suggests that desirable and undesirable
effects are closely balanced
Implications from a patient and clinician
perspective:
• Patients: Some individuals would want the
suggested course of action, whereas others
may not. Appropriate discussion regarding
pros/cons/alternatives is appropriate to come
to a patient-specific decision
• Clinicians: A shared decision-making model
through a discussion regarding the evidence
and alternatives is appropriate, taking into
consideration patients’ values and
preferences
Quality of evidence
Criteria
High
We are very confident that the true effect lies
close to that of the estimate of the effect
Moderate
We are moderately confident in the effect
estimate: The true effect is likely to be close to
the estimate of the effect, but there is
a possibility that it is substantially different
Low
Our confident in the effect estimate is limited:
The true effect may be substantially different
from the estimate of the effect
Very low
We have very little confidence in the effect
estimate: The true effect is likely to be
substantially different from the estimate of
effect
© 2025 by The American College of Gastroenterology
The American Journal of GASTROENTEROLOGY
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Table 2. Recommendations for the management of GPMC
GC screening
1. We suggest against routine screening with upper endoscopy for GC and GPMC in the general population in the United States (Very low quality of evidence,
conditional recommendation)
2. Wecannot make arecommendationonopportunisticscreeningforGCandGPMCwithupperendoscopyinindividualsconsideredhigh-riskforGCbasedonimmigration
status, race, and ethnicity, and certain environmental factors due to insufficient direct evidence from US populations (Insufficient evidence, no recommendation)
GPMC noninvasive diagnosis
3. Wesuggest against the use of noninvasive biomarkers for the purpose of GPMC or GC screening or surveillance in the United States (Very low quality of evidence,
conditional recommendation)
GPMC endoscopic diagnosis
4. In patients undergoing upper endoscopy, we recommend a high-quality endoscopic evaluation of the stomach to identify GPMC (or GC). This includes achieving
adequate mucosal visualization with cleansing and insufflation, visual station mapping, photodocumentation of anatomic landmarks and any abnormalities, and
adequate gastric evaluation time (Low quality of evidence, strong recommendation)
5. In patients undergoing upper endoscopy for evaluation of GPMC, we suggest the use of HDWLE and IEE for gastric examination (Low quality of evidence,
conditional recommendation)
GPMC histologic diagnosis
6. In individuals at increased risk for or with suspected GPMC or GC, we suggest systematic gastric sampling according to the updated Sydney biopsy protocol. At
minimum, 2 separate containers should be used for the antrum/ incisura, and for the corpus. Targeted biopsies of any other mucosal abnormalities should be
placed in additional separate containers (Low quality of evidence, conditional recommendation)
7. In individuals with GIM, we suggest that thehistological subtype of GIM (incomplete, complete, and mixed) be reported for the purpose of GPMC risk stratification
and informing surveillance (Low quality of evidence, conditional recommendation)
8. In individuals with GIM, we suggest that the anatomic extent and severity of GIM be reported for the purpose of risk stratification and informing GPMC
surveillance. Anatomically limited GIM is confined to the antrum and incisura, whereas anatomically extensive GIM also involves the corpus. The severity refers to
the proportion of atrophy or GIM in individual biopsies from each compartment (antrum, incisura, and corpus) (Very low quality of evidence, conditional
recommendation)
GPMC surveillance
9. In individuals with GIM who are considered high risk for GC, we suggest endoscopic surveillance at 3-year intervals. High-risk groups include individuals with
GIM and at least one of the following criteria:
(i) High-risk GIM histology:
• Incomplete GIM histological subtype vs complete subtype
• Corpus-extension, defined as corpus involvement also with antrum or incisura involvement
(ii) Any GIM histology with one of the following risk factors for GC:
• Family history of GC in a first-degree relative
• Foreign-born, with emigration from a high-incidence nation
• High-risk race or ethnicity, including East Asian, Latino/a, Black, and AIAN individuals
(Very low quality of evidence, conditional recommendation)
10. In individuals with severe GIM or AG in biopsies of the antrum or corpus, we suggest endoscopic surveillance at 3-year intervals (Very low quality of evidence,
conditional recommendation)
11. In individuals with low-risk GIM or atrophy, we suggest against endoscopic surveillance. Low-risk groups include
(i) Complete type GIM, without evidence of incomplete GIM
(ii) Complete GIM of focal anatomic extent that is confined to the antrum
(iii) None of the “high-risk” clinical criteria listed in Recommendation 9 above
(iv) AG which is mild in severity
(Very low quality of evidence, conditional recommendation)
Endoscopic management of dysplastic GPMC
12. Inpatients with dysplasia (IND, LGD, and HGD) and visible margins, we suggest endoscopic resection inclinically appropriatepatients (Low quality of evidence,
conditional recommendation)
13. In patients with dysplasia (IND, LGD, and HGD) without visible margins, we suggest a repeat endoscopic evaluation with HDWLE and IEE by an experienced
endoscopist (Low quality of evidence, conditional recommendation)
14. In patients appropriate for endoscopic resection of dysplasia, particularly endoscopic submucosal dissection, we recommend referral to a high-volume center
with appropriate expertise in the diagnosis and therapeutic resection of gastric neoplasia (Low quality of evidence, strong recommendation)
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Immigrant populations contribute in part to the race and eth-
nicity disparity of GC incidence in the United States. GC incidence
varies widely across different nations and geographic regions, with
the highest incidence regions being East Asia, Eastern Europe, and
Central and Andean South America (2). A systematic review and
meta-analysis reported significantly higher incidence and mortal-
ity of GC among first-generation immigrants from high-incidence
to low-incidence geographic areas, with the pooled relative risk
(RR) for all types of GC (measured as standardized incidence ratio)
1.66 (95% confidence interval [CI] 1.52–1.80) for men and 1.83
(95% CI 1.69–1.98) for women, and for NCGA specifically, 1.80
(1.65–1.95) for men and 1.62 (1.47–1.76) for women (6) (see
Supplement 1, Supplementary Digital Content 1, http://links.lww.
com/AJG/D556 for additional discussion).
Family history
Individuals with a family history of GC have 2- to 10-fold higher
risk of GC compared with individuals without a family history,
based on observational studies (19). Multiple factors may con-
tribute to the familial aggregation of GC, such as shared genetic
predisposition, shared H. pylori infection and strains, shared
environmental factors (lifestyle, diet, and cultural factors), and
combinations thereof (19). Overall, approximately 10% of
patients with GC have a positive family history, while only about
1%–3% are related to inherited cancer syndromes; although, the
proportion may be greater with the recent identification of
the importance of pathogenic germline variants such as the he-
reditary homologous recombination deficiency (e.g., breast
cancer gene [BRCA]) (20,21). Based on one study, patients with
GIM and a first-degree family history of GC had 4.5-fold higher
odds (odds ratio [OR] 4.53, 95% CI 1.33–15.46) of GC compared
to patients with GIM but without a family history of GC (22). In
a recent prospective single-center pilot screening study from
California, among individuals with a family history of GC in
a first-degree relative (n 5 61; mean age 59 years old), 27 (44%)
had GIM and 4 (7%) had dysplasia on screening endoscopy (23).
Although it is challenging to parse out shared genetic vs shared
nongenetic contributors, the increased risk of GPMC and GC
among individuals with a first-degree family history of GC pro-
vides rationale for considering this population for endoscopic
screening on an individual basis.
Inherited cancer syndromes with increased risk of GC
Individuals who carry pathogenic variants of GC susceptibility
genes are at a substantially higher lifetime risk of GC. There are 2
groups of hereditary cancer syndromes with increased GC risk: (i)
Hereditary GC syndromes: hereditary diffuse GC, familial in-
testinal GC, and gastric adenocarcinoma with proximal polyposis
of the stomach and (ii) Hereditary syndromes with an increased
GC risk: Lynch syndrome, hereditary gastrointestinal (GI) poly-
posis syndromes (familial adenomatous polyposis [FAP], Peutz-
Jeghers syndrome, juvenile polyposis, and MUTYH-associated
polyposis), hereditary breast and ovarian cancer syndrome, and
Li-Fraumeni
syndrome,
and
hereditary
homologous
re-
combination deficiency (BRCA1, BRCA2, PALB2, and ATM)
particularly in the setting of H. pylori infection (Table 4). Patients
Table 2. (continued)
15. In patients with confirmed complete resection of dysplasia, we suggest endoscopic surveillance. We recommend surveillance examinations be performed by
an experienced endoscopist and using HDWLE and IEE, with biopsies according to the systematic biopsy protocol in addition to targeted biopsies (Low quality of
evidence, strong recommendation)
GPMC nonendoscopic management
16. We recommend testing for Helicobacter pylori (and eradication treatment if positive) in patients with GPMC and resected early GC to reduce the risk of
progression to GC and metachronous early GC, respectively (Moderate quality of evidence, strong recommendation)
17. We do not suggest the use of aspirin, nonsteroidal anti-inflammatory drugs, COX-2 inhibitors, or antioxidants for individuals with GPMC for the purpose of GC
chemoprevention (Very low quality of evidence, conditional recommendation)
Autoimmune gastritis
18. Among individuals diagnosed with AIG, we recommend assessment for H. pylori infection with a nonserological test, eradication treatment if positive, and
posttreatment testing to confirm eradication (Low quality of evidence, strong recommendation)
19. There is insufficient evidence to make a formal recommendation on endoscopic surveillance in individuals with AIG. Given the increased risk of type 1
neuroendocrine tumors and the possible increased risk of GC, individualized surveillance may be considered (Low quality of evidence, conditional
recommendation)
Gastric epithelial polyps
20. Werecommend endoscopic resection of all gastric adenomas, regardless of size, to exclude and prevent dysplasia and early GC. For adenomas that are
not amenable to endoscopic resection, we recommend referral for surgical resection, if clinically appropriate (Low quality of evidence, conditional
recommendation)
21. We could not make a recommendation on the endoscopic resection of all hyperplastic polyps greater than 10 mm in size based on the current evidence
(Insufficient evidence, no recommendation)
22. In individuals with GEP, with the exception of fundic gland polyps, we recommend systematic gastric biopsies (e.g., updated Sydney protocol) be obtained from
the surrounding flat mucosa given the high prevalence of GPMC, H. pylori infection, and AIG in these patients (Very low quality of evidence, conditional
recommendation)
AIAN, American Indian and Alaska Native; AIG, autoimmune gastritis; GC, gastric cancer; GEP, gastric epithelial polyps; GIM, gastric intestinal metaplasia; GPMC, gastric
premalignant condition; HDWLE, high-definition white light endoscopy; HGD, high-grade dysplasia; IEE, image-enhanced endoscopy; IND, low-grade dysplasia; LGD, low-
grade dysplasia.
© 2025 by The American College of Gastroenterology
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Table 3. Key concepts for the management of GPMC
GC epidemiology and screening
• The epidemiologic and biologic risk factors overlap, and yet are distinct, for the 3 outcomes of GPMC prevalence, GC incidence, and GPMC to GC progression. Mechanistic studies
and novel biomarkers are needed to improve our understanding and surveillance paradigms for GPMC to GC progression
• There are no randomized clinical trials from the United States nor other populations evaluating the efficacy of GC screening. The large observational studies from East Asia and meta-
analyses of these studies demonstrate that endoscopy for GC screening is associated with a substantial reduction in GC mortality, and a 5-yr survival of nearly 70%. This is primarily driven by the
increased detection of early-stage GC (eligible for endoscopic resection), rather than a decrease in incident GC.
• Endoscopic screening should be considered in persons with a family history of GC (first-degree relative) on an individualized basis. Endoscopy would start at age 45–60 or 10 years
before the diagnosis of GC in the youngest affected family member. These individuals should be screened for H. pylori and eradicated if positive.
• FirstgenerationimmigrantpopulationscontributetotheraceandethnicitydisparityofGCincidenceintheUS.Endoscopicscreeningshouldbeconsideredonanindividualizedbasis,withshared
decision-making, in the highest-risk individuals. GC incidence varies widely across nations and geographic regions, with the highest incidence regions being East Asia, Eastern Europe (including
western Russia), and Central/South America. The South America high-incidence area encompasses the Andean region from Colombia to Chile. Immigrant generation and level of acculturation
affect risk. These individuals should be screened for H. pylori and eradicated if positive.
GPMC endoscopic and histologic diagnosis
• A high-quality endoscopy examination of the gastric compartment has 5 main components: (i) use of HDWLE; (ii) adequate gastric distension using insufflation (CO2 preferably, or
air) to flatten the gastric folds and expose the gastric mucosa adequately; (iii) mucosal cleansing to clear all debris, mucous and bubbles; (iv) standard photodocumentation; and (v)
adequate gastric inspection time. Gastric examination time and photodocumentation are surrogate quality metrics for the gastric evaluation. The 2–3 min upper endoscopy, especially
for patients with GPMC, falls short of the standard of care.
• HDWLE and IEE (e.g., narrow band imaging, blue laser imaging, etc) are appropriate for individuals with at increased GC risk, those with suspected GPMC or GC during endoscopy,
and those undergoing GPMC surveillance. Near focus and optical zoom are helpful but not mandatory for GPMC detection.
• The coordination between the gastroenterologist andpathologist for pathology reporting is critical fordelineationof thepatient GPMCsurveillance plan. This coordinationis needed at
the local level (“local advocates”), as well as the national society level. Pathology report details should include information specific to stomach location (e.g., antrum, incisura, and
corpus), AG and GIM severity (biopsy-specific), AG and GIM extent (e.g., antrum and corpus), the subtype of GIM (e.g., complete, incomplete, mixed), severity of dysplasia (IND, LGD,
HGD), and presence/absence of H. pylori organisms, at a minimum.
• The diagnostic challenges for GPMC and dysplasia include sampling error during biopsies (e.g., AG and GIM patchy multifocality), the interobserver variability among pathologists,
particularly for IND and LGD, and the variable training among gastroenterologists for the detection of GPMC and early GC.
GPMC endoscopic surveillance
• Delineation of GPMC surveillance intervals requires further study inthe US. Patients with multiple risk factors for GCmay be considered for shorter than 3-yr intervals. For example, an
individual with extensive GIM and with a family history of GC may be considered for a 1-2-yr surveillance interval. Patient-physician decision-making for GPMC surveillance is
appropriate in these cases
• We suggest against performing routine repeat endoscopy within 12 months in individuals with nondysplastic GPMC for the purpose of risk stratification unless there are concerns
regarding the quality of the endoscopy or adherence to the Sydney biopsy protocol
• We acknowledge that some studies suggest that White race, ethnicity, and country of origin are important risk factors for prevalent GPMC and GC; yet, these factors are not proven to
be independent predictors of progression, although US and global studies are limited in this domain. However, endoscopic surveillance of individuals with GPMC who identify as
a high-risk race or ethnicity, or who emigrated from a high-incidence region, should be recommended for 3-yr endoscopic surveillance given the substantial increased risk of GC in
these groups
• In patients with IND or LGD without visible lesions, the rates of progression are modest yet measurable. The surveillance intervals are proposed but have not been evaluated in
prospective studies. We suggest a repeat endoscopic exam in 12 months if advanced neoplasia was confidently ruled out. Referral to an endoscopist with expertise in diagnosing and
ideally resecting gastric neoplasia is reasonable.
• Patients withHGD withoutvisible mucosalabnormalities haveahighprobabilityofeitheralreadyhavinga prevalent GCorprogressingtoGCwithin a short timeframe.A repeatendoscopic
exam within 3 months with an endoscopist with expertise in diagnosing and ideally endoscopically resecting gastric neoplasia is suggested.
• In patients with endoscopically resected dysplastic lesions, the optimal postresection surveillance interval has not been investigated in prospective studies. Shorter intervals may be
warranted in patients with additional risk factors for synchronous or metachronous GC
Autoimmune gastritis
• AIG is considered a gastric preneoplastic condition because, by definition, there is corpus atrophy, either with or without GIM. AIG is associated with an increased risk of well-
differentiated neuroendocrine tumors of enterochromaffin-like cells (also termed type I gastric carcinoid tumor) and possibly gastric adenocarcinoma.
• The overlap of H. pylori-associated GPMC and AIG is common, and thus, the same risk stratification parameters apply, as does testing for active H. pylori infection and eradication
treatment if positive. Individuals with AIG are also established to be at risk for type I carcinoids. In patients with AIG, surveillance with HD-WLE and IEE should be considered. The
interval is determined based on GPMC risk stratification parameters (e.g., family history of GC), which should be individualized
Gastric epithelial polyps
• The malignant potential of GEP is based on histology, polyp size, and the presence of specific polyposis syndromes. All patients with hyperplastic or adenomatous GEP should have
standard Sydney protocol biopsies and testing for active H. pylori infection, given the increased prevalence of GPMC in this setting
• There is insufficient evidence to recommend endoscopic resection of hyperplastic polyps .10 mm at the index endoscopy. An individualized approach is warranted, with
consideration of resection or biopsies, and 12 month surveillance, as clinically appropriate.
AG, atrophic gastritis; AIG, autoimmune gastritis; GC, gastric cancer; GEP, gastric epithelial polyps; GIM, gastric intestinal metaplasia; GPMC, gastric premalignant
condition; HDWLE, high-definition white light endoscopy; HGD, high-grade dysplasia; IEE, image-enhanced endoscopy; IND, low-grade dysplasia; LGD, low-grade
dysplasia.
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with a family history suggestive of hereditary cancer should be
referred to Genetic Counseling, and potential endoscopic
screening should be individualized based on the syndrome-
specific guidelines and patient preferences (24–27).
Screening for GPMC and GC in high-risk US populations: US
evidence, a work in progress
Routine screening with upper endoscopy for GC and GPMC in
the low-risk general US population is not indicated given the
overall low-to-moderate incidence, the lack of cost-effectiveness,
and the absence of evidence. Although focused screening of high-
risk populations in the United States may address the GC cancer
disparity, there is a lack of evidence in the United States to make
a recommendation. In addition to the epidemiologic data iden-
tifying high-risk US populations, the current evidence base in the
US for screening is mostly limited to cost-effectiveness studies
and indirect evidence from regions with screening programs,
primarily in East Asia.
The epidemiological evidence suggests that high-risk groups
who may benefit from screening include those with a family
history of GC, specific hereditary syndromes, foreign-born
immigrants from high-incidence regions, and US populations
with a high incidence of GC, including East Asian individuals,
Latino/a groups, Black individuals, and AIAN individuals. Can-
cer screening and surveillance specificto high-risk race and ethnic
populations is proposed to be both ethical and efficacious, par-
ticularly with respect to GC (28), at least until accurate biological
biomarkers are available. The age of 45–60 would be reasonable
given that the prevalence of GPMC is significant by age 45 in
high-risk populations, and also since this aligns with the co-
lorectal screening recommendations. Persons with multiple risk
factors may also be appropriate to consider, for example, male
sex, smoker, and with H. pylori infection (29). Examples of na-
scent screening studies in high risk groups include combined H.
pylori-fecal immunochemical testing and opportunistic endos-
copy with screening colonoscopy.
There is consistent evidence in the form of large observational
epidemiological
studies
identifying
populations
in
the
United States who are at increased risk for GPMC and GC, and
among whom the rates of GC mirror rates in populations were GC
screening studies have been conducted (5,30,31). However, there
are no large US-based observational studies or RCTs directly
evaluating the impact of screening for GC vs no screening in these
populations. There are also no relevant studies of GC screening vs
no screening from other global regions with heterogeneous pop-
ulations as in the United States, although notably, some Western
countries do advocate for opportunistic endoscopic screening
(29,32–34,231). The most robust, albeit indirect, evidence comes
from studies conducted in East Asia, where GC screening has been
consistently associated with substnatially reduced GC-related
mortality and increased 5-year survival (see below).
Only 1 clinical trial from the United States has evaluated the
impact of GC screening in a high-risk population, and this was
a small prospective pilot screening program conducted between
2017 and 2020 within the Kaiser integrated health system (23). Of
61 individuals with a first-degree family history of GC, 44% had GIM
and7%hadLGD,consistentwiththeclassificationasanat-riskgroup.
The majority of evidence demonstrating the impact of endo-
scopic GC screening on early GC detection is from Asia. Multiple
observational studies from East Asia have unequivocally dem-
onstrated mortality benefits associated with endoscopic GC
screening (35–40). In the study analyzing data from the Korean
National Cancer Screening Program, which included more than
39 million adults of older than 40 years who underwent screening
endoscopy between 2007 and 2016, the sensitivity of endoscopy
for GC ranged from 66% to 69% (vs 17%–24% for radiographic
screening) and with specificity consistently exceeding 99% (41).
The mortality data from this South Korea program revealed that
organized GC screening among individuals aged $40 years was
associated with 47% (OR 0.53, 95% CI 0.51–0.56) lower GC
mortality compared with no screening (35).
In the meta-analysis by Zhang et al (42), which included
342,013 individuals from Asian countries, endoscopic screening
was associated with an overall 40% RR reduction in GC mortality
(RR 0.60, 95% CI 0.49–0.73); however, endoscopic screening was
not associated with lower GC incidence, indicating that early
detection of gastric neoplasia is the primary driver of the observed
mortality and survival benefits. As further support, data from the
Korean National Cancer Screening Program demonstrated that
screening endoscopy was associated with 2-fold higher odds (OR
Table 4. Hereditary and genetic gastric cancer syndromes
Familial gastric cancer syndromes
• Hereditary diffuse gastric cancer
• CDH1 germline mutations (E-Cadherin)
• Familial intestinal gastric cancer
• Gastric cancer and proximal polyposis of the stomach
Hereditary syndromes with increased gastric cancer risk
• Gastrointestinal polyposis syndromes with increased gastric cancer risk
• Familial adenomatous polyposis, Peutz-Jeghers syndrome, juvenile polyposis, MUTYH-associated polyposis
• Cancer syndromes with increased gastric cancer risk
• Lynch syndrome, hereditary breast and ovarian cancer syndrome, and Li-Fraumeni syndrome
• Hereditary homologous recombination deficiency (e.g. BRCA1, BRCA2)
Common germline gene variant syndromes are important regarding the biology; however, to date, they are not clinically actionable. Common gene variants with gastric
cancer risk are often identified in genome-wide association studies, which are limited in number (e.g., Asia, Europe, and Latin America). In addition, there are gene variants
which influence the H. pylori-environmental interactions, and specifically the inflammatory response (e.g., proinflammatory cytokine genotypes).
© 2025 by The American College of Gastroenterology
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Management of Gastric Premalignant Conditions
7
2.10, 95% CI 1.90–2.33) of diagnosing localized GC compared
with individuals who were never screened (43). With imple-
mentation of GC screening in Japan and South Korea, now at least
50% of GC are early-stage and only 12%–16% are metastatic at the
time of diagnosis, which is in stark contrast to ,30% being di-
agnosed as early-stage before implementation of screening in
these countries (4). This has translated to current 5-year overall
survival rates for GC in South Korea and Japan .60%–70%,
whereas the 5-year overall survival was about 30% before
implementation of these programs (44–46). In the United States,
nearly 40% of GC are metastatic at the time of diagnosis, and only
15% diagnosed in the curative early-stage GC (47). The current 5-
year GC survival rate in the United States is 36%, comparable with
the prescreening implementation rates in South Korea and Japan.
These non-US data provide evidence thatsystematic screening
among individuals from high-risk populations is associated with
markedly improved GC mortality and survival, related to higher
proportion of cancer diagnosed in an early, curative stage.
However, the data regarding endoscopic screening for GPMC
and GC in US populations are essentially nonexistent, which
precludes a specific recommendation for GC screening in US
high-risk populations.
Cost-effectiveness of risk-based screening for GPMC and GC in
the United States
Cost-effectiveness studies provide additional indirect evidence
for endoscopic screening among at-risk populations in the
United States. This complements a large body of evidence dem-
onstrating the cost-effectiveness of endoscopic GC screening in
East Asian countries and Portugal (48–52). Saumoy et al. assessed
the cost-effectiveness of screening for GC using upper endoscopy
bundled with screening colonoscopy, in the US screening-age
population, stratified by race and ethnicity (53). The study found
that endoscopy starting at age 45–50 years with continued sur-
veillance when GIM or more advanced pathology is diagnosed
was cost-effective for East Asian ($71,451/quality adjusted life
years [QALYs]), Hispanic ($76,070/QALY), and non-Hispanic
Black ($80,278/QALY) individuals, but not for non-Hispanic
White individuals ($122,428/QALY). By contrast, biennial
esophagogastroduodenoscopy for screening irrespective of his-
tologic findings was not cost-effective. Using the same screening
strategies (vs no screening), Shah et al demonstrated the cost-
effectiveness of endoscopic GC screening among the most pop-
ulous East Asian American populations in the United States
disaggregated by country of birth (54). One-time endoscopy at
the time of screening colonoscopy, with continued surveillance if
GIM or more advanced pathology was diagnosed, demonstrated
the lowest incremental cost-effectiveness ratios among Chinese,
Japanese, and Korean Americans (all ,$75,000/QALY). The
above studies examined bundled endoscopy with screening
colonoscopy; thus, the findings cannot necessarily be extrapo-
lated to those who undergo noninvasive colorectal cancer
screening or those who opt out of colorectal cancer screening.
In summary, direct, high-quality US-based data in the form of
randomized trials or large observational studies evaluating the
impact of screening on patient-important outcomes in US pop-
ulations are nonexistent. We acknowledge the extensive evidence
from specific Asian countries demonstrating the benefits of en-
doscopic screening in increasing the detection of early-stage GC
and reducing GC-related mortality in populations with high GC
burden. The panel cannot at this time make a recommendation
on screening for GPMC and GC with upper endoscopy in
high-risk US populations given the lack of robust US evidence, the
invasiveness and risks of upper endoscopy, and projected costs (in-
cluding ill-defined insurance coverage). Endoscopic screening should
be considered in individuals with certain hereditary genetic syn-
dromes or a first-degree family history of GC on an individualized
basis (e.g., starting at the age 10 years before the youngest first-degree
family member with GC). The deficiency of US-based studies in this
area delineates a critical knowledge gap with important public health
implicationsgiventhecurrentandgrowingproportionofUSadultsat
increased risk for GC, which define this cancer disparity.
DIAGNOSIS OF GPMC
Noninvasive evaluation of GPMC
Recommendations: GPMC noninvasive diagnosis
3. We suggest against the use of noninvasive biomarkers for the
purpose of GPMC or GC screening or surveillance in the
United States (Very low quality of evidence, conditional
recommendation).
Noninvasive biomarkers are a desirable and potentially cost-
effective approach for identifying individuals who would benefit
from upper endoscopy to detect GPMC/GC and resect, if ap-
propriate. Candidate noninvasive tests that have been evaluated
include H. pylori IgG, H. pylori CagA or VacA (strain-specific
virulence factors), pepsinogen I, pepsinogen II, gastrin, gastrin-
17, C-reactive protein, migration inhibitory factor 1, trefoil factor
family 3, reprimo, or a combination of these (55,56). Blood
multiomic technologies are under study and may offer an ap-
pealing approach. Overall, and particularly in the United States,
definitive studies are lacking regarding efficacy of noninvasive
biomarkers for the purpose of screening or surveillance for
GPMC and GC. Based on a review of the evidence, which is
summarized in Supplement 1 (see Supplementary Digital Con-
tent 1, http://links.lww.com/AJG/D556), currently there are no
noninvasive biomarkers that would (i) replace upper endoscopy
or (ii) serve as a method to discriminate subjects at low vs high
risk of GPMC, GPMC progression, or GC and warrant referral for
upper endoscopy.
Endoscopic evaluation of GPMC
Recommendations: GPMC endoscopic diagnosis
4. In patients undergoing upper endoscopy, we recommend a high-
quality endoscopic evaluation of the stomach to identify GPMC.
This includes achieving adequate mucosal visualization with
cleansing and insufflation, visual station mapping,
photodocumentation of anatomic landmarks and any
abnormalities, and adequate gastric evaluation time (Low quality
of evidence, strong recommendation).
5. In patients undergoing upper endoscopy for evaluation of GPMC,
we suggest the use of high-definition white light endoscopy and
image-enhanced endoscopy for gastric examination (Low quality
of evidence, conditional recommendation).
Quality endoscopy considerations
The endoscopic and histopathologic evaluations are the core of
GPMC diagnosis and risk stratification. The primary goal of
upper endoscopy is the early detection of gastric dysplasia and
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Morgan et al
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cancer, ideally at a stage for which endoscopic resection is cura-
tive. The secondary goal is the diagnosis and assessment of the
severity andextent of AG and GIM to identify the individuals who
would benefit from ongoing surveillance for early dysplasia/
cancer detection purposes. This section is focused on the endo-
scopic and histological assessment and diagnosis of GPMC, while
the same core principles of the high-quality endoscopic exami-
nation apply to endoscopy in general (57,58).
Individuals who warrant endoscopy with high-definition
white light endoscopy (HDWLE) and image-enhanced endos-
copy (IEE), as well as systematic biopsy sampling, are (i) indi-
viduals with known GPMC or prior GC with indications for
surveillance, (ii) individuals at increased risk for GPMC or GC
(e.g., family history and early-generation immigrant from high-
incidence region), and (iii) individuals with an endoscopic ap-
pearance concerning for GPMC.
A high-quality evaluation of the entire gastric mucosa is the
foundation for identifying GPMC and GC, noting that 4.7%–
11.3% of neoplastic lesions are missed on upper endoscopy
completed within 3 years of GC diagnosis (59–61). Neoplastic
lesions are often subtle and endoscopic miss rates even approach
25%, particularly in less-experienced endoscopists. Complete
mucosal evaluation is best achieved by using insufflation to
adequately distend the gastric folds, mucosal cleansing, and
spending sufficient time evaluating all gastric areas (“stations”)
(Figure 1). Although adequate mucosal cleansing can often be
achieved with water irrigation alone, the use of mucolytic and
defoaming agents (i.e., simethicone and N-acetylcysteine)
significantly improves mucosal visibility scores and reduces
total procedure time (62–64). Standardized cleansing scores
are available (65,66). The quality of visualization of the gastric
mucosa should be routinely documented in the endoscopic
report, analogous to reporting bowel preparation quality in
colonoscopy reports.
Training endoscopists to perform a detailed gastric evaluation
and recognize and classify lesions significantly increases the de-
tection of GPMC and reduces the time to referral for endoscopic
resection (67,68). Surrogate measures for a quality endoscopic
evaluation include endoscopic visualization time and photo-
documentation, which are analogous to documentation of with-
drawal time and photodocumentation of landmarks during
colonoscopy. Retrospective data from high-incidence regions
demonstrate that GPMC detection rates increase after detailed
gastric evaluation (e.g., 6–7 minutes) conducted after mucosal
cleansing is completed, independent of the endoscopist training
level (29,69–72).
Photodocumentation of each of the gastric stations and any
abnormal findings is important to structure the endoscopic ex-
amination. Additional reasons include correlation with histo-
logical findings and monitoring the findings over time for
surveillance or referral for endoscopic treatment. Photo-
documentation protocols in East Asia and Latin America gen-
erally recommend photodocumentation of at least 20 stations
(73). Observational studies suggest that such protocols alone
significantly increase the detection of GPMC in high-risk
patients, although the data are mixed (67,74). When extrapolat-
ing this evidence to the overall low-incidence US population and
considering time feasibility, we advocate for, at minimum, pho-
todocumentation of 6 anatomic stations: 3 antegrade images of
the corpus-greater curvature, corpus-lesser curvature, and
antrum-pylorus, and 3 retrograde images of the incisura, corpus-
greater curvature, and fundus-cardia (57,58,73). Mucosal ab-
normalities warrant dedicated images.
High-definition endoscopy and image-enhanced endoscopy
High-definition (HD) is defined as an image with more than 650
to 720 lines of resolution and requires all components of the
system (endoscope chip, processor, transition cables, and
Figure 1. Systematic stomach endoscopic evaluation with cleansing, insufflation, and photodocumentation. Inadequate (a) and high quality (b)
visualization.
© 2025 by The American College of Gastroenterology
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Management of Gastric Premalignant Conditions
9
monitor) to be HD compatible. All major endoscopy manu-
facturers now offer HD gastroscope systems in the United States
(Olympus 190 series; Pentax 2990i and 2790i; Fujinon 590 series)
(75). HDWLE systems offer electronic magnification of 31.5
or 32.
Chromoendoscopy is achieved with topical dyes or “virtu-
ally” with modifications of light wavelength or computer im-
age
processing
herein,
labeled
as
IEE.
Topical
dye
chromoendoscopy evaluates the mucosa after spraying Lugol
iodine or indigo carmine. Virtual chromoendoscopy is the
most practical for use in the United States. The optical image
processing uses 1 of 3 commercially available modalities:
narrow band imaging (NBI) from Olympus, Fujinon In-
telligent Color Enhancement from Fujinon (including blue
laser imaging (BLI) and linked color imaging (LCI), and iScan
from Pentax. Emerging endoscopic technologies and the po-
tential environmental impact of a GPMC surveillance program
are reviewed in Supplement 1 (see Supplementary Digital
Content 1, http://links.lww.com/AJG/D556).
Recognition and categorization of GPMC
Endoscopy can identify GPMC as visible nonpolypoid or pol-
ypoid mucosal changes, or as “nonvisible” mucosal changes that
are identified incidentally on biopsies collected for other purposes
(e.g., evaluation of dyspepsia). Three mucosal changes should be
identified endoscopically: (i) AG, (ii) GIM, and (iii) dysplasia.
Endoscopy alone cannot reliably differentiate between dysplasia
(i.e., indefinite for dysplasia [IND], LGD, HGD) and early car-
cinoma, and histologic confirmation is needed (76). Gastric
polyps and polypoid lesions are discussed separately.
We suggest using HDWLE and virtual IEE to evaluate the
gastric mucosa to optimize the identification and characterization
of GPMC. Herein, we use the term “HDWLE with IEE” to refer to
the common US setting with the use of HDWLE with NBI or BLI,
with or without optical zoom (77). We note that NBI/BLI in the
stomach has inadequate illumination for a wide-field view,
as compared with the narrow-lumen esophagus (78). NBI is
therefore less efficacious for detecting, as opposed to character-
izing gastric lesions. This is true for many optical biopsy tech-
nologies (e.g., Raman and confocal endomicroscopy), and
contrasts with IEE with LCI, that uses short wavelengths to
produce bright images even for distant views (78).
The first step in recognizing GPMC is becoming familiar with
the appearance of normal gastric folds, pit patterns, and the
regular arrangement of collecting venules (Figure 2). Gastric folds
are typically 5–10 mm thick in the fundus and body and traverse
in parallel, with flattening toward the antrum (79). Healthy gas-
tric mucosa has round pit patterns in the corpus and elongated pit
patterns in the gastric antrum on HDWLE, which are more ap-
parent with IEE. Healthy gastric mucosa with regular arrange-
ment of collecting venules appears as red spidery vessels in the
corpus (80).
Gastric atrophy is the loss of glandular mass with variable
lamina propria fibrosis, with or without replacement by meta-
plastic tissue (GIM). There are 4 hallmark endoscopic findings
that characterize gastric atrophy: (i) pallor, (ii) loss of gastric
folds, (iii) prominence of the visible submucosal vessels (sub-
mucosal venules), and (iv) a border between atrophic and normal
mucosa in patients with H. pylori-related AG (HpAG) (81).
Among these changes, the loss of gastric folds is the most sensitive
change followed by increased visibility of the submucosal venules
(sensitivity 67%/specificity 85% and sensitivity 48%/specificity
87%, respectively) (82). Separating antral and corpus biopsies
into distinct specimen jars and correctly orienting the specimens
Figure 2. The Correa cascade: endoscopy (HDWLE, NBI) and histology correlation. HDWLE, high definition white light endoscopy; NBI, narrow band imaging.
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during paraffin-embedding may assist pathologists with report-
ing AG, which is often underdiagnosed and subject to in-
terobserver variability. Most examples of gastric atrophy can be
divided into 2 patterns, HpAG and AIG. HpAG develops in the
gastric antrum and incisura and may extend proximally. In some
individuals, especially if there is persistent infection, there is the
replacement of the normal glandular tissue by multifocal meta-
plastic tissue. The border of the atrophic mucosa can be identified
endoscopically and is used by the Kimura Takemoto system to
estimate atrophy severity and the risk of progression through the
Correa cascade (83). AIG, also termed autoimmune metaplastic
AG, is detected in the gastric corpus and fundus with character-
istic sparing of the antrum unless there is concomitant HpAG
(84). Diagnosing gastric atrophy based on endoscopy alone may
be inaccurate and should be confirmed and its extent evaluated
using a standardized biopsy protocol (see below).
On HDWLE, GIM appears as irregular, patchy, white mu-
cosa with a tubulovillous pattern (Figure 3). The tubulovillous
pattern is associated with a sensitivity of 89% and a specificity of
90% and is better appreciated using NBI (85). Other features of
GIM on HDWLE and NBI (or BLI) are the light blue crest sign
(sensitivity of 48%–89% and specificity of 93%–96%) (85–87),
marginal turbid band (sensitivity 100% and specificity 66%)
(86), and the “white opaque substance” sign, which appears as
nodular patches of white raised mucosa and histologically rep-
resents accumulation of lipid droplets (88). The light blue crests
are fine, light blue-white lines on the crests of the epithelial
surface. One limitation is the moderate interobserver reliability
of these endoscopic findings; improved agreement comes with
experience (85,89,90).
The mucosal changes of dysplasia and EGC are nonspecific
and subtle. Dysplasia manifests either erythema or pallor, slight
Figure 3. Gastric intestinal metaplasia on HDWLE with or without NBI and near-focus: (a) HDWLE, (b) NBI, (c) HDWLE with near-focus, and (d) NBI with
near-focus. The patchy aspect of GIM is demonstrated in (c). In the left area, normal glandular structures are arranged in a regular honeycomb pattern. In
the central area, the tubulovillous white glandular structures of intestinal metaplasia are observed. The LBCs are thin white or blue lines located at the
borders of the tubulovillous glands (c and d). LBCs often appear in whitish color on NBI and are specific for GIM. The NBI examination with near-focus
facilitates targeted biopsies within the framework of the Sydney system biopsy protocol. GIM, gastric intestinal metaplasia; HDWLE, high-definition white
light endoscopy; LBC, light blue crest; NBI, narrow band imaging.
© 2025 by The American College of Gastroenterology
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Management of Gastric Premalignant Conditions
11
elevation or depression, thickening, abnormal convergence or
flattening of gastric folds, or irregular mucosal vessels with loss of
mucosal architecture (91,92). Ulcerated lesions often reflect in-
vasive adenocarcinoma, with higher likelihood of submucosal
invasion (at least stage T1b) and lymph node metastases that
generally preclude patients from endoscopic treatment. In
patients with HpAG, mucosal changes may persist even after
successful H. pylori eradication therapy. In such patients, reddish
depressed lesions may represent precursors to carcinomas that
should undergo detailed evaluation, biopsies or endoscopic mu-
cosal resection (EMR), or endoscopic submucosal dissection
(ESD) when feasible (93).
Histologic diagnosis of GPMC
Recommendations: GPMC histologic diagnosis
6. In individuals at increased risk for or with suspected GPMC or
GC, we suggest systematic gastric sampling according to the
updated Sydney biopsy protocol. At minimum, 2 separate
containers should be used for the antrum and incisura, and for
the corpus. Targeted biopsies of any other mucosal
abnormalities should be placed in additional separate
containers (Low quality of evidence, conditional
recommendation).
7. In individuals with GIM, we suggest that the histological
subtype of GIM (incomplete, complete, and mixed) be
reported for the purpose of GPMC risk stratification and
informing surveillance (Low quality of evidence, conditional
recommendation).
8. In individuals with GIM, we suggest that the anatomic extent
and severity of GIM be reported for the purpose of risk
stratification and informing GPMC surveillance. Limited GIM is
confined to the antrum and incisura, whereas anatomically
extensive GIM also involves the corpus. The severity refers to
the proportion of atrophy or GIM in individual biopsies from
each compartment (antrum, incisura, and corpus) (Very low
quality of evidence, conditional recommendation).
Gastric pathology reporting
The pathology reporting of GPMC requires coordination be-
tween the endoscopist and pathologist at the local level in ac-
cordance with national standards. Explicit details include
information specific to stomach location (e.g., antrum and cor-
pus), severity and extent of GPMC (AG, GIM, dysplasia), subtype
of GIM, and presence/absence of H. pylori organisms. The Sydney
system for evaluation of gastritis was developed in the 1990s and
consists of systematic biopsies of 5 sites, the greater and lesser
curvatures of the antrum and corpus, and the incisura angularis
(94–96) (Figure 2). Typically, 1–2 biopsies are obtained at each of
the 5 sites and placed in 2 separate jars (antrum/incisura and
corpus). Biopsies may be “directed” within each of the 5 Sydney
zones if the endoscopic appearance suggests GPMC. “Targeted”
biopsies refer to biopsies obtained for mucosal abnormalities and
lesions, which are placed in a separate jar. The incisura, as an
epithelial transition zone, is often the first zone to display AG or
GIM in the setting of H. pylori gastritis and increase the likelihood
of detecting GPMC.
GIM subtyping separates GIM into complete and in-
complete types. This determination is readily made on he-
matoxylin and eosin (H&E)-stained sections without the need
for additional special stains if the specimens are adequately cut
and processed. Felipe described further subtyping based on
mucin histochemical stains (e.g., high iron diamine staining):
type I (complete) and types II and III (both considered in-
complete), but this level of discrimination is typically reserved
for research purposes and is not needed clinically (97,98).
There are limited data on patient-related outcomes associated
with GIM subtyping in the United States (17). However, in
high-risk populations, there are strong, consistent data that
support GIM subtyping as complete vs incomplete (or mixed if
both are present) to delineate the risk for progression to neo-
plasia (97,99–101).
The severity of AG and GIM refers to the proportion of at-
rophy or GIM in individual biopsies in each compartment (an-
trum, incisura, and corpus). Increased severity of AG/GIM is
consistently associated with higher risk of neoplastic pro-
gression, independent of anatomic extent (22). Mild atrophy
can be difficult to appreciate; however, extensive loss is readily
apparent. Intestinal metaplasia in up to one-third and two-
thirds of glands can be regarded as mild and moderate, re-
spectively, whereas greater than two-thirds is considered severe
(94,95). The Operative Link for Gastritis Assessment and Gas-
tric Intestinal Metaplasia (OLGA/OLGIM) is a validated his-
tologic scoring system that considers both the extent and
severity of AG/GIM and is strongly associated with risk of
progression based on robust non-US data. OLGA/OLGIM is not
routinely used in the United States, and therefore, US-specific
data are limited (Figure 4, Box 1).
All samples concerning for dysplasia, including IND, LGD,
and HGD, should be reviewed by a pathologist with expertise
in GI pathology. Many cases of IND and LGD are “down-
graded” to negative for dysplasia after expert review (102). The
IND category is often applied in the presence of obscuring
inflammation, but attention to histomorphologic details on
review by an expert pathologist can most often clarify the
presence vs absence of dysplasia (102). It is important to en-
sure that causes of inflammation, such as H. pylori infection
and/or
nonsteroidal
anti-inflammatory
drug
use,
are
addressed and removed because superimposed inflammation
can make the diagnosis of dysplasia challenging (see below). In
general, the histologic features of LGD are similar to those of
colorectal tubular adenomas, with enlarged hyperchromatic
nuclei that are aligned perpendicular to the cell basement
membranes of the affected glands. HGD shows loss of this
nuclear polarity with an erratic arrangement of enlarged
hyperchromatic nuclei. Some examples of gastric dysplasia
show gastric rather than intestinal type differentiation, instead
showing pyloric gland or foveolar cell differentiation (103).
Describing differences in classification systems across different
countries is beyond the scope of this document. However, it is
worth recognizing that some areas of the world may classify
HGD and early GC differently (e.g., carcinoma in situ may be
classified as cancer, but in the United States, this would be
classified as HGD).
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MANAGEMENT OF GPMC
Recommendations: nondysplastic GPMC surveillance
9. In individuals with GIM who are considered high risk for GC, we
suggest endoscopic surveillance at 3-year intervals. High-risk
groups include individuals with GIM and at least one of the
following criteria:
(i) High-risk GIM histology:
·
Incomplete GIM histological subtype, vs complete
subtype
·
Corpus-extension, defined as corpus involvement also
with antrum or incisura involvement
(ii) Any GIM histology with one of the following risk factors for GC:
·
Family history of GC in a first-degree relative
·
Foreign-born, with emigration from a high-incidence
nation
·
High risk race or ethnicity, including East Asian, Latino/a,
Black, and AIAN individuals
(Very low quality of evidence, conditional recommendation).
10. In individuals with severe GIM or AG in biopsies of the antrum
or corpus, we suggest endoscopic surveillance at 3-year
intervals (Very low quality of evidence, conditional
recommendation).
11. In individuals with low-risk GIM or atrophy, we suggest against
endoscopic surveillance. Low-risk groups include
(i) Complete type GIM, without evidence of incomplete GIM
(ii) GIM of focal anatomic extent that is confined to the antrum
(iii) None of the high-risk clinical criteria listed in
Recommendation 9 above
(iv) AG that is mild in severity
(Very low quality of evidence, conditional recommendation).
The epidemiology of GPMC
High-risk populations for GPMC parallel high-risk populations
for GC. AG is the most common GPMC with an estimated
prevalence of 15% in the United States overall, although these
estimates should be considered in the context that AG is often
underdiagnosed and subject to interobserver variability (104).
Based on data from Western populations, GIM is observed in
approximately 5%–15% of patients undergoing upper endoscopy
with gastric biopsies (17,105,106). The prevalence of both AG and
GIM is significantly higher in certain populations such as non-
White groups and first-generation immigrants from high-
incidence nations where the GPMC prevalence may approach
40% in 40–60-year-olds (107).
Based on limited data from Western populations, the preva-
lence of dysplasia ranges from 0.5% to 3.75%, but some cohorts
report higher prevalence depending on the population (e.g.,
populations with GIM, high racial and ethnic diversity, and
family history in a first-degree relative) (108–112). Variability in
the reported prevalence of dysplasia across studies may also stem
from variability based on histologic interpretation. For example,
IND or even LGD may arguably represent an inflammatory or
regenerative process as opposed to true neoplastic trans-
formation. Indeed, even in studies with expert GI pathologists,
low interobserver agreement for LGD has been demonstrated
(kappa 0.2), although the agreement is higher for HGD (113).
Further compromising our understanding of the true burden of
the spectrum of GPMC from an epidemiological standpoint is
that these conditions are generally asymptomatic and require
a high-quality endoscopy with appropriate biopsies to diagnose.
Chronic H. pylori infection is the leading risk factor for
GPMC, although less common etiologies, such as AIG, are rec-
ognized. GPMC are more common in non-White individuals and
immigrants from high GC incidence regions. Additional risk
factors include male sex, having a first-degree relative with GC,
smoking and dietary factors. Each of these factors may confer an
independent risk of prevalent GPMC ranging from approxi-
mately 1.5- to 3.5-fold (17,114–119). We emphasize that the risk
factors for the development of GPMC and GC and the pro-
gression from GPMC to GC overlap, yet the dominant risk factors
likely vary for the 3 domains, and will vary in different pop-
ulations. For the transition from GPMC to GC, the principal
drivers and their respective biomarkers are critical need areas for
research.
Nondysplastic GPMC and the risk of progression
Individuals with confirmed GPMC have a higher risk of
intestinal-type gastric adenocarcinoma. One population-based
study from Sweden, a low GC incidence nation, reported that AG
and GIM were associated with minimally adjusted hazard ratios
(95% CI), of 5.0 (3.8–6.7) and 6.5 (4.8–8.9), respectively, for
noncardia GC, compared with normal gastric mucosa (120). This
study excluded the first 2 years of follow-up and did not provide
details regarding H. pylori status, surveillance history, anatomic
extent, or other relevant histological features (e.g., GIM subtype).
Based on other studies, including 1 comprehensive meta-analysis,
the overall baseline risk of progression of AG and GIM is low and
parallels the rate of progression of other preneoplastic changes
(e.g., Barrett’s esophagus and low-risk colorectal adenomas)
(22,121,122). Based on meta-analysis, the 10-year cumulative risk
of progression to GC among patients with histologically con-
firmed GIM is 1.6% (95% CI 1.5%–1.7%) (22). The baseline risk of
GC among individuals with GPMC varies significantly depending
on histological features, anatomic extent, microbial (e.g., persis-
tent H. pylori infection), family history and hereditary factors,
and other factors with less defined risk estimates (e.g., tobacco
and diet) (123,124); this is why appropriate risk stratification is
the main branch point informing the management of patients
with GPMC.
Individuals with GIM and additional risk factors for pro-
gression have anywhere from 2.0- to 20-fold higher risk of
progression to GC (22,123). These risk factors include corpus-
extended AG/GIM, incomplete-type GIM, moderate-severe AG
or GIM (i.e., OLGA/OLGIM III-IV, see INSERT and Supple-
ment 2, Supplementary Digital Content 2, http://links.lww.com/
AJG/D557), and family history of GC in a first-degree relative.
By contrast, some individuals with mild GPMC (e.g., mild
unifocal AG or GIM) may show regression, particularly after
confirmed H. pylori eradication and improvement in the se-
verity of background gastritis (22,120,122,123,125,126). Some
studies suggest that although race, ethnicity, and country of
origin are significant risk factors for GPMC and GC, these
factors are not proven to be independent predictors of pro-
gression, also noting that US studies are limited (22,127). That
said, endoscopic surveillance of individuals with GPMC who
identify as a high-risk race or ethnicity, or who emigrated from
a high-incidence region, should be considered for endoscopic
surveillance given the substantial increased risk of GC in these
groups.
© 2025 by The American College of Gastroenterology
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Management of Gastric Premalignant Conditions
13
Histologic determinants of nondysplastic GPMC progression
Appropriate sampling of the gastric mucosa using the Sydney
protocol allows determination of anatomic extent, GIM subtype,
histopathological stage/severity, and the presence of H. pylori in-
fection or AIG (95,113,128). Obtaining robust estimates of the risk
of GC associated with each of these factors is challenging, partic-
ularly in the United States, because GIM is often diagnosed in-
cidentallyonupperendoscopyperformedforotherindicationsand
without adequate sampling (129). In 1 US population-based study,
66% of patients with GIM had the anatomic location categorized as
“not otherwise specified” (129). In the United States, the GIM
histological subtypes are rarely reported on pathology reports.
Anatomic extent. In retrospective cohort studies conducted in US
populations, corpus-extended GIM has a higher risk of progression
to GC compared with GIM limited to the antrum and incisura
(22,108,129). The findings are generally similar in high-risk pop-
ulations outside the United States. For example, a retrospective
analysis of a large cohort of high-risk Colombian patients un-
dergoing surveillance endoscopy with 20 years of follow-up reported
that individuals with corpus-extended GIM had a statistically non-
significant higher risk of GC compared with individuals with
antrum-limited GIM (OR 2.1, 95% CI 0.7–6.6) (101). A meta-
analysis by Shao et al reported that compared with patients without
GIMasthereferencegroup,patientswithGIMlimitedtotheantrum
had a 4-fold (OR 4.06, 95% CI 2.79–5.91; I2 5 27.4%) higher risk of
GC, while those with corpus extension had a 7.4-fold (OR 7.39, 95%
CI 4.94–11.06; I2 5 37.8%) higher risk of GC; no US studies were
included in this meta-analysis (130). GPMC focality is also relevant
but similarly depends on obtaining a sufficient number of gastric
biopsies. Unifocal AG or GIM, defined as 1 biopsy specimen con-
taining AG/GIM, is associated with lower risk than multifocal AG/
GIM, which is defined as at least 2 biopsies containing AG/GIM.
Moderate to severe AG/GIM, as noted below, even if anatomically
limited to the antrum, is still considered high-risk and such indi-
viduals should be considered for surveillance.
Histologic severity. Moderate to severe AG/GIM is associated with
substantially higher risk of GC compared with mild AG/GIM and is
a strong predictor of progression. However, reporting of histologic
severity of AG/GIM in routine US clinical practice is not always per-
formed. As previously noted, OLGA/OLGIM is a histopathologic
staging system that considers both the anatomic location and the his-
tologic severity of AG/GIM that is regularly used in other Western
countries (e.g., Europe and Latin America) but not the United States.
Basedonrobustdata,includingameta-analysisof2prospectivecohort
studies from Italy and the Netherlands, moderate-severe AG/GIM
(stage III/IV) was associated with a 27.7-fold (95% CI 3.75–204.87)
higher RR of GC compared with mild-intermediate AG/GIM (stage 0/
I/II) (113,131,132). The use of OLGA/OLGIM staging is limited in the
United States, and therefore, data are minimal in US populations. As
with GIM subtype, gastroenterologists should work with their local
pathologiststooptimizeprotocolsfortheroutinereportingofhistologic
severity given its value as a risk stratification parameter.
Figure 4. The OLGA/OLGIM histology staging system (see Box 1). OLGA, Operative Link on Gastritis Assessment; OLGIM, Operative Link on Gastric
Intestinal Metaplasia Assessment.
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GIM subtype. Several studies and meta-analyses consistently
report a several-fold higher risk of progression in patients with
incomplete-type GIM compared with complete-type GIM his-
tology (133–135). One meta-analysis published in 2021 of 12
cohort studies comprising nearly 6,500 individuals reported
a pooled RR of dysplasia and GC of 3.72 (95% CI 1.42–9.72) and
5.16
(95%
CI
3.28–8.12),
respectively,
in
patients
with
incomplete-type
vs
complete-type
GIM
(99).
A
second
2021 meta-analysis, with subgroup analysis according to geog-
raphy, reported that incomplete GIM was associated with a sig-
nificantly higher risk of GC (pooled RR for GC 4.05, 95% CI
1.65–9.93) or dysplasia/GC (pooled RR for dysplasia/GC 4.65,
95% CI 2.30–9.92) in Western European populations (136). In
addition, based on meta-analysis, the presence of only complete-
type GIM does not seem to confer a higher risk of GC compared
with patients without GIM (pooled OR 1.55, 95% CI 0.91–2.65)
(130). It should be noted that among patients with confirmed
GIM, the incomplete type is common, with an estimated pooled
prevalence of 42% (95% CI 34–49), although some studies report
a higher prevalence (123). The evidence is consistent across lower
incidence regions such as Western Europe but is still indirect
because no studies were identified from US populations.
Active H. pylori infection. Active H. pylori infection is strongly
associated with GPMC progression, whereas successful H. pylori
eradication may be associated with stable histology or even re-
gression in some individuals. H. pylori eradication is considered
an adjunct intervention to GPMC surveillance (see below). Al-
though uncommon, patients may have refractory H. pylori in-
fection after failure of several lines of appropriate H. pylori
therapy—these patients are particularly high risk and should be
offered surveillance endoscopy at a 3-year interval, which is pri-
marily based on expert opinion (a shorter interval should be
considered if additional GC risk factors).
Additional determinants of nondysplastic GPMC progression
A family history of GC, particularly in a first-degree relative, is
a strong risk factor for incident GC among patients with non-
dysplastic GPMC, although there are mixed data (17). Based on
a meta-analysis of 4 studies, including 1 from the United States,
among patients with GIM, having a first-degree relative with GC
was associated with 4.5-fold higher odds of GC (OR 4.53, 95% CI
1.33–15.46), but with very low certainty of evidence, because only
the US study showed an association (17). Family history showed
a null association in the Singapore “GCEP” study with multi-
ethnic Asian populations (94). Hereditary and germline genetic
factors are increasingly recognized; however, their role as a de-
terminant of GPMC prognosis remains to be defined (21).
Active tobacco smoking is a modifiable risk factor associated
with a higher prevalence of GPMC, and possibly progression,
although the data are mixed and population-based data are lim-
ited (22). One US population-based study reported a null asso-
ciation between smoking history and GIM progression (22). By
contrast, in the GCEP cohort, patients with OLGIM II-IV and
a smoking history .20 pack-years had a 3.7-fold (95% CI
1.03–13.2) higher risk of early gastric neoplasia compared with
nonsmokers, whereas those with ,20 pack-years did not (HR
2.06, 95% CI 0.41–10.3) (123). Smoking cessation should be
recommended regardless due to the broad positive health
impacts; however, there are insufficient data to inform whether
smoking per se warrants consideration of GPMC surveillance
independent of the risk factors described above.
Other putative markers of GPMC progression risk include
microbial dysbiosis, changes in the non-H. pylori gastric
microbiome, and tissue-level molecular changes (137,138).
Tissue-level factors certainly hold promise for developing a per-
sonalized approach to GPMC surveillance; however, there is
currently insufficient evidence to inform clinical practice, and
most studies have been performed in East Asian populations.
Similarly, there are mixed data in non-US populations regarding
the predictive value of serum biomarkers (e.g., pepsinogens),
about progression of GPMC to GC (123,125). Novel, ideally
noninvasive, biomarkers represent a critical unmet need to better
delineate individuals at highest risk for GPMC progression.
Dysplastic GPMC and risk of progression
The diagnosis of dysplasia (or “intraepithelial neoplasia”) is
subject to interobserver variability, especially for IND and LGD,
and less so for HGD, even among expert pathologists (125). In
one study, among 47 patients initially diagnosed with IND, a re-
review by expert GI pathologists resulted in the same diagnosis in
Box 1. OLGA and OLGIM (see Figure 4)
Background. The Operative Link for Gastritis Assessment
(OLGA) and Operative Link for Gastric Intestinal Metaplasia
Assessment (OLGIM) are validated histopathological staging
systems that consider both the anatomic location and
histological severity of AG and GIM. They were developed
primarily for staging H. pyloriassociated atrophy with or
without metaplasia. These systems necessitate adequate
quality biopsies obtained separately from the antrum/incisura
and corpus. (See Supplement 2, Supplementary Digital
Content 2,http://links.lww.com/AJG/D557for additional
background). The OLGA/OLGIM system is in widespread use
in Europe and some centers in Asia and Latin America. A
limited number of U.S. centers use OLGA/OLGIM. OLGA/
OLGIM stages range from 0 (normal pathology) to IV
(moderate/severe AG 1/2 GIM of the antrum and corpus).
There is lower interobserver variability for OLGIM than for
OLGA. OLGA/OLGIM staging is a strong predictor of
progression to GC in high-risk populations. Higher stages of
OLGA/OLGIM (III-IV) in patients with H. pylori-associated
gastritis are consistently associated with a substantially higher
risk of progression to gastric cancer compared to lower stages
(0-I). OLGA/OLGIM II is considered an intermediate-risk
category and individual risk assessment is helpful. In the
Singapore GCEP cohort, the largest cohort of patients with
GPMC published to date, the incidence of early gastric
neoplasia was 543.8 per 10000 person-years in individuals
with OLGIM III/IV (versus 21.5 in OLGIM I). OLGA/OLGIM
staging should not be applied to patients with autoimmune
gastritis (AIG) in the absence of H. pyloriinfection, since AG
and GIM only occur in the corpus in patients with H. pylori-
negative AIG. Implementation in Practice. In centers where
OLGA/OLGIM staging is routinely used, we suggest that
individuals with OLGA/OLGIM III/IV (without dysplasia)
undergo surveillance endoscopy every 3 years based upon the
global literature, with consideration of a 2-year interval if they
have any additional demographic or clinical risk factors (e.g.,
family history). For patients who are intermediate-risk (OLGA/
OLGIM II), endoscopic surveillance in 3 years may be
considered if multiple additional high-risk factors are present.
US studies are needed regarding the value versus the burden
of routine OLGA/OLGIM staging and the impact on gastric
cancer prevention and early detection.
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Management of Gastric Premalignant Conditions
15
25 (53.2%), and reclassification as negative for dysplasia (23.4%),
LGD (21.3%), and even HGD (2.1%), in the remaining individ-
uals (139). This diagnostic uncertainty informs the interpretation
of risk estimates for dysplasia progression reported in the current
literature. In addition, many studies analyze dysplasia as a com-
posite outcome agnostic of dysplasia grade. One population-
based study from Sweden reported a 7.1-fold (95% CI 5.1–9.8)
higher standardized incidence ratio (SIR) for dysplasia pro-
gression to noncardia GC (reference: normal mucosa), compared
with SIRs of 3.0 (95% CI 2.5–3.7) and 3.7 (95% CI 2.9–4.6) for AG
and GIM, respectively, but did not provide SIRs according to
dysplasia grade (120).
It is undeniable that HGD is associated with a synchronous
carcinoma or a high rate of progression to invasive carcinoma.
The rate of progression of HGD has been estimated to be 47%–
100% over 4–48 months (139–149). One nationwide cohort study
from a low-incidence region demonstrated that approximately
one-quarter of patients with HGD were diagnosed with invasive
cancer within 12 months (125,150). In one retrospective study in
Australia, of 160 patients with dysplasia, 26.9%, 57.5%, and 15.6%
were classified as HGD, LGD, and IND, respectively, the majority
of which were classified as nonpolypoid (70.6%) (139). In this
cohort, among patients with HGD undergoing surveillance only
(mean follow-up 1.0 6 1.4 [SD] years), 42.9% had cancer iden-
tified on their index examination, and 4.8% developed an interval
cancer (defined as .12 months after index). The literature has
also demonstrated similar rates of HGD “regression,” ranging
from 0% to 33% which underscores the challenges of sampling
error in research and in patient care (139–148,151–153).
IND and LGD have a lower rate of progression to more ad-
vanced neoplasia and may even show regression. Based on more
recent longitudinal cohort data from both low-intermediate and
high-GC incidence regions, a measurable percentage of IND/
LGD do in fact regress or remain stable on long-term follow-up
(123,125,126,148). Notwithstanding, IND/LGD demonstrate
a significant rate of progression, especially considering that di-
agnostic upstaging to more severe lesions occurs in a minority, up
to 30% based on most cohort studies (120,139,148). Endoscopic
resection is recommended for IND or LGD as a diagnostic and
therapeutic intervention when associated with a visible lesion, as
detailed below. One retrospective study of 119 patients with
biopsy-confirmed IND found that on resection, 26 (21.8%) had
early GC; lesion, and diameter $10 mm and surface erythema
were both independently associated with GC (154). In the Aus-
tralian cohort cited above, among patients with LGD undergoing
surveillance only (mean follow-up 2.3 62.1 [SD] years), 7.9% had
cancer identified at the index examination, 5.3% developed in-
terval cancer, 28.9% had unchanged pathology, whereas 57.9%
demonstrated no dysplasia on follow-up examinations. These
LGD estimates are similar in other cohorts (1,139,141,149). As in
the case of nondysplastic GPMC progression, US data and novel
biomarkers are needed.
GPMC “regression”
Longitudinal data from large prospective non-US cohorts (e.g.,
Singapore, northern Europe, Colombia, and Chile) support the
observation that GPMC may improve or “regress,” particularly
after H. pylori eradication in patients with less severe baseline
histology (22,101,120,123,125,126). This observation nuances the
notion that GIM represents a “point of no return.” Robust ob-
servational cohort data also suggest that even LGD may show
improvement, particularly in the setting of H. pylori eradication.
That said, in general, robust data regarding risk factor modifi-
cation are not consistently ascertained in these observational
studies. A principal challenge in studies is the inherent multifocal
(“patchy”) nature of GPMC, wherein sampling error and mis-
classification are significant. In addition, gastric histopathology
scoring systems (e.g., OLGA/OLGIM and Correa Score) provide
an ordinal system to detect change, yet the global diagnosis (e.g.,
AG and GIM) may not change. Finally, there is important in-
terobserver variability among pathologists, particularly with mild
AG and IND/LGD.
Endoscopic surveillance and intervals for nondysplastic GPMC
The sojourn time of nondysplastic GPMC (AG/GIM) to GC is
relatively long, which allows the opportunity for endoscopic
surveillance for early gastric neoplasia detection and resection.
Resection of early gastric neoplasia before submucosal invasion is
potentially curative and is in marked contrast to the poor prog-
nosis associated with advanced-stage GC. The primary pur-
pose of the high-quality endoscopic surveillance examination is
to identify neoplasia, while the secondary purpose is to appro-
priately risk-stratify patients with GPMC. The individual sur-
veillance endoscopy recommendation should be based on
patient-physician decision-making, patient comorbidities, and
overall prognosis (Figure 5).
Surveillance vs no surveillance based on risk. There are no
prospective RCTs in the US or globally that have evaluated the
impact of endoscopic surveillance vs no surveillance, nor sur-
veillance intervals, on important outcomes, especially the impact
on GC-related mortality. There is, however, a sizeable body of
non-US observational data from low-intermediate and high-
incidence regions supporting that endoscopic surveillance vs no
surveillance is associated with an earlier stage of GC among
patients with high-risk GPMC defined based on the clinical and
histopathological factors detailed above (42). Patients with
GPMC who are at low risk for neoplastic progression (e.g.,
complete-type GIM limited to the antrum with no additional risk
factors) are unlikely to benefit from routine interval endoscopic
surveillance. Indeed, a substantial proportion of patients with
nondysplastic GPMC may be considered low-risk. In a cross-
sectional study of 415 US Veterans who underwent Sydney
protocol biopsies, 73% had focal GIM, while the remainder were
classified as extensive GIM (118). In the GCEP study, less than
15% were categorized as high-risk, which is similar to other co-
hort studies (113,123). Some caution is merited in classifying
individuals as low-risk based on a single endoscopic examination
because studies have demonstrated that up to 30% of patients
originally classified as low-risk based on an index endoscopy
without systematic biopsies are upstaged to high-risk histological
classification on repeat short-interval endoscopic examination
(;1–2 years) with Sydney protocol biopsies (155). However,
there are currently no US data to support performing a repeat
endoscopy with Sydney protocol biopsies within 12 months
among patients who are initially classified as low-risk. An in-
dividualized approach is recommended.
Surveillance intervals. The optimal surveillance interval for
individuals with GPMC is not defined and should be determined
based on individual risk assessment until more precise data are
available. Data from microsimulation and cost-effectiveness
analyses conducted with a US population in mind are illustra-
tive and provide guidance regarding an individualized approach
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Morgan et al
16
to endoscopic surveillance vs no surveillance in patients with
GPMC (156,157). One study found that the cost-effectiveness of
endoscopic surveillance of GIM was highly sensitive to the rate of
progression to GC, again underscoring the importance of risk
stratification (53). Another microsimulation analysis demon-
strated that surveillance of incidentally detected GIM every
5 years in all patients is associated with reduced GC incidence and
mortality and is cost-effective ($40,706/QALY) from a US
healthcare perspective; however, in high-risk individuals, namely
those with a family history of GC, anatomically extensive or
incomplete-type GIM, a 3-year surveillance was the favored
strategy and was cost-effective (157). Based on the micro-
simulation analysis by Thiruvengadam, endoscopic surveillance
of incidentally diagnosed GIM results in 87–190 life-years gained
(LYG)/1,000 in all-comers, 351–851 LYG/1,000 in individuals
with a first-degree family history of GC, 157–335 LYG/1,000 in
individuals with anatomically extensive or incomplete-type GIM,
and only 43–97 LYG/1,000 in individuals with antrum-limited,
complete-type GIM (157). For context, colorectal cancer
screening in the average-risk population compared with no
screening results in 286-335 LYG/1,000.
Based on availabledata, including indirect datafrom modeling
studies cited above, we recommend that patients with GPMC and
any of the following high-risk features be considered for
endoscopic surveillance at every 3-year intervals: GIM histology
(corpus-extension and incomplete-type), family history of GC in
a first-degree relative, and demography (immigration from
a high-incidence nation, race, and ethnicity considerations). Se-
vere GIM or atrophy histology in the antrum/incisura or corpus
also warrants surveillance. The principal race and ethnic groups
at-risk include East Asians, Latino/a, Black, and AIAN individ-
uals (28). In centers where OLGA/OLGIM staging is used, we
suggest that individuals with OLGA/OLGIM III/IV (without
dysplasia) undergo surveillance endoscopy at least every 3 years
based on the global literature, with a low threshold to consider
a shorterinterval (e.g., 2-year). This isbased on observational data
from the GCEP cohort (one of the largest GIM surveillance
cohorts to date) demonstrating that individuals with OLGIM III/
IV had a 20-fold higher independent risk of neoplasia (adjusted
HR 20.8; 95% CI, 5.04-85.6), with over 50% of early gastric
neoplasia being diagnosed within 2 years of the index exam
(range: 12.7-44.8 months) (123).
In summary, the plan for endoscopic surveillance for a patient
with AG/GIM should be individualized based on risk stratifica-
tion and should also consider shared patient-physician decision-
making. The patient with complete GIM limited to the antrum
would not warrant surveillance, yet if the GIM were graded as
severe
in
the
antrum/incisura
biopsies,
surveillance
is
Figure 5. Nondysplastic GPMC management algorithm. All patients should be tested for H. pylori using nonserologic methods, treated if positive, and
confirmed to be eradicated, irrespective of GPMC histology, severity, grade, or associated visible vs nonvisible lesion. Ideally, H. pylori eradication should
confirmed at least 1-2 months before the endoscopic surveillance examination because active H. pylori infection can affect endoscopic and histologic
appearanceofGPMC.ThesurveillanceexaminationcomprisesHDWLEwithIEEformucosalinspectionandsystematicprotocolbiopsies.Thealgorithmspresented
assume that patients are medically appropriate for endoscopic surveillance. *Some studies in non-US populations have demonstrated that approximately 30% of
patients originally classified as low-risk, based on the initial examination diagnosing GPMC, are upstaged to high-risk histological classification on repeat short-
interval endoscopic examination (;1–2 years) with Sydney protocol biopsies. There are no US data to inform such practice. If there is concern regarding the quality
of the initial examination, or patient preference and patient-physician shared decision-making, repeat surveillance in 3 years can be considered among individuals
withGIMdeemedlow-riskbasedontheinitialexamination.IndividualswithGIMandmultipleriskfactorsforGCshouldbeconsideredforsurveillanceatshorterthan
3-year intervals. GIM, gastric intestinal metaplasia; GPMC, gastric premalignant condition; HDWLE, high-definition white light endoscopy.
© 2025 by The American College of Gastroenterology
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Management of Gastric Premalignant Conditions
17
reasonable. Patients with multiple risk factors do warrant
surveillance (130).
Endoscopic management of dysplastic GPMC
Recommendations: endoscopic management ofdysplastic GPMC
12. In patients with dysplasia (IND, LGD, and HGD) and visible
margins, we suggest endoscopic resection in clinically
appropriate patients (Low quality of evidence, conditional
recommendation).
13. In patients with dysplasia (IND, LGD, and HGD) without visible
margins, we suggest a repeat endoscopic evaluation with
HDWLE and IEE by an experienced endoscopist (Low quality of
evidence, conditional recommendation).
14. In patients appropriate for endoscopic resection of dysplasia,
particularly endoscopic submucosal dissection, we recommend
referral to a high-volume center with appropriate expertise in the
diagnosis and therapeutic resection of gastric neoplasia (Low
quality of evidence, strong recommendation).
15. In patients with confirmed complete resection of dysplasia, we
suggest endoscopic surveillance. We recommend surveillance
examinations be performed by an experienced endoscopist and
using HDWLE and IEE, with biopsies according to the systematic
biopsy protocol in addition to targeted biopsies (Low quality of
evidence, strong recommendation).
Endoscopic management of dysplastic GPMC
In patients diagnosed with dysplastic GPMC, management
depends on the grade of dysplasia, presence and characteristics of
a visible lesion, status of the surrounding mucosa (e.g., severe
GIM), active H. pylori infection, and individual patient consid-
erations. We acknowledge that in other regions of the world,
particularly East Asia, the diagnosis of dysplasia or invasive car-
cinoma may be made based on endoscopic appearance using IEE
typically in conjunction with magnification endoscopy, with final
confirmation and staging based on the en bloc resected lesion. In
the United States, the reality is that the diagnosis of dysplasia
generally hinges on confirmation from biopsy sampling. Poor
quality of samples (e.g., preparation artifacts), absent targeted
biopsies, or significant mucosal inflammation (e.g., H. pylori in-
fection) may compromise the accuracy of dysplasia diagnosis. We
recommend that any biopsies concerning for dysplasia be
reviewed by an expert GI pathologist. In all patients diagnosed
with active H. pylori infection, it is recommended that eradication
treatment be immediately provided with confirmation of eradi-
cation because (i) concomitant H. pylori infection may affect the
diagnostic certainty of dysplasia; (ii) H. pylori eradication is as-
sociated with reduced risk of progression, particularly for IND
and LGD; and (iii) active H. pylori infection may compromise
delineation of the resection margin for visible lesions (158).
However, awaiting eradication confirmation should not delay
endoscopic management, especially for patients with HGD, given
the high rates of synchronous cancer and short-interval pro-
gression (Figure 6).
If the index examination diagnosing dysplastic GPMC was
performed by a provider with limited volume or experience in
managing GPMC, or if there is concern about the quality of the
initial examination, referral to a high-volume center with ex-
pertise is preferred. This examination serves several purposes that
are relevant for clinical decision-making, specifically allowing
(i) repeat visualization to characterize the area in question;
(ii) systematic protocol biopsies of the surrounding flat mucosa to
inform surveillance intervals; and (iii) repeat evaluation for other
neoplasia missed on the index exam, given that several studies
have demonstrated rates of missed synchronous cancers around
10%, even in expert hands (159).
Visible dysplasia. Dysplasia can be visible and delineated by areas
of nodularity, erythema, pallor, or depression. Dysplasia can also
be found incidentally on macroscopically normal appearing
mucosa. For visible lesions found on endoscopy, endoscopic re-
section serves both diagnostic and therapeutic purposes. One of 4
lesions with biopsies showing LGD is upstaged after complete
endoscopic resection (17% upstaged to HGD and 7% to carci-
noma) (160).
All patients with dysplastic GPMC associated with a visible
lesion amenable to endoscopic resection should be referred for
endoscopic resection if medically appropriate. If the visible
lesions and involvement are too extensive or if the lesion char-
acteristics are not favorable for a compete resection, then surgical
consultation is indicated. This discussion should be reserved for
patients with biopsy-confirmed HGD or who have multifocal
LGD with multiple additional risk factors for progression. On-
going surveillance after dysplasia resection is indicated given the
high risk of metachronous lesions (161,162). The duration of
surveillance after resection is not clear. Borrowing from the lit-
erature of metachronous GC occurrence after endoscopic re-
section of EGC, surveillance should continue for at least 10 years
postresection, and perhaps longer, if medically appropriate
(163,164).
Endoscopic resection of LGD is safe (perforation and bleeding
rates are ,1% and ,7%, respectively) and is associated with
reduced rates of progression to HGD or carcinoma (165,166).
Lesions greater than 10 mm, with HGD, or depressed lesions are
more likely to harbor carcinoma and should be resected with ESD
(160,167). Compared with EMR, ESD has significantly higher
rates of “en bloc” resection, higher rates of complete resection
(negative histologic margins), and lower recurrence rates but
requires longer procedure times and results in significantly higher
perforation rates (,1%–5%; OR 3.5 and 4.7 in separate meta-
analyses) (167–169). No significant differences in postprocedure
bleedinghave been reportedbetween EMRandESD. Thelearning
curve for ESD is higher than for other endoscopic procedures.
Expert proficiency requires at least 150 cases in a Western
training environment, which underlies the recommendation to
refer patients to high-volume centers (170). Hybrid ESD allows
safe en bloc resection of gastric lesions ,20 mm with shorter
times than conventional ESD (171). Ideally, patients with high-
risk lesions who are candidates for endoscopic resection should
also be discussed in a multidisciplinary setting including path-
ologists, therapeutic endoscopists, and surgeons. Patients should
be counseled regarding the rate of recurrence, the risk of meta-
chronous lesions, and thus, the need for ongoing endoscopic
surveillance of the remnant mucosa. The surveillance recom-
mendation should be based on the final histopathologic diagnosis
and whether complete resection was achieved. Patients should
also be counseled that if the final histology demonstrates cancer,
additional treatment including surgery may be indicated
depending on the cancer stage, grade, and patient-level factors.
Nonvisible dysplasia. In patients with dysplasia without visible
lesions, so-called “nonvisible dysplasia,” the rates of progression
are also significant (125,150). In such cases, a short-interval en-
doscopy with detailed evaluation using HDWLE and IEE is
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Morgan et al
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recommended, along with targeted biopsies of any mucosal ab-
normalities and nontargeted biopsies according to the Sydney
biopsy protocol. This so-called second-look endoscopy should be
performed by an experienced endoscopist in a high-volume
center with EMR/ESD expertise. The second-look endoscopy has
been shown to detect focal neoplastic lesions in 90% of patients
(172). In patients with initial nonvisible HGD, with pathology
confirmed by an expert GI pathologist, the second-look exami-
nation is also helpful given the risk of a synchronous cancer. In
patients with IND/LGD and confirmation by an expert GI pa-
thologist, the time frame for the second-look should be within
6–12 months and, ideally, after measures to reduce inflammation
(H. pylori eradication and nonsteroidal anti-inflammatory drug
cessation). In patients with active H. pylori infection and IND/
LGD, the second-look endoscopy should be performed at least
1 month after confirming eradication, which allows time for the
background inflammation to improve. This principle has been
useful in the evaluation of esophageal intestinal metaplasia
(Barrett’s esophagus) and nonvisible IND/LGD where there is
concomitant erosive esophagitis; initiation or optimization of
gastric acid suppressing medications (e.g., PPI) in this analogous
scenario improves inflammation and improves the accuracy of
the dysplasia diagnosis.
If high-quality upper endoscopic examination using HDWLE
with IEE by an experienced endoscopist confirms nonvisible dys-
plasia, patients who are medically appropriate should enter regular
endoscopic surveillance. Patients with nonvisible HGD should un-
dergo endoscopic surveillance in 3–6 months, while for those with
nonvisible IND or LGD, every 6–12 months is reasonable. Addi-
tional risk factors such as a prior history of GC, multifocal GPMC,
family history of GC in a first-degree relative, or persistent H. pylori
maybeconsideredfor shorterintervalsurveillance.Ifdysplasiaisnot
demonstrated on consecutive subsequent high-quality examinations
over a 2-year period with IEE and targeted/Sydney biopsies, then
returning to non-dysplastic GPMC surveillance intervals is reason-
able. Endoscopic surveillance is subject to variability related to
endoscopist technique, training, experience, and equipment; there-
fore,weadditionallyrecommendthatexaminationsbeperformedby
an experienced endoscopist in high-volume centers.
Although there is a role of endoscopic ultrasound in staging
early GC, data do not support the routine use of endoscopic
ultrasound in the evaluation of GPMC. In addition, Japanese
pathologists recognize the concept of intraepithelial carcinoma,
but this concept is not recognized by most Western pathologists
(109). Early GC is defined as adenocarcinoma limited to the
mucosa, including the muscularis mucosae (T1a) and submucosa
Figure 6. Dysplastic GPMC management algorithm. All patients should be tested for H. pylori using nonserologic methods, treated if positive, and confirmed
to be eradicated, irrespective of GPMC histology, severity, grade, or visible vs nonvisible lesion. Ideally, H. pylori eradication should confirmed at least several
weeks before the endoscopic surveillance examination because active H. pylori infection can affect endoscopic and histologic appearance of GPMC. The
surveillance examination comprises HDWLE with IEE for mucosal inspection and systematic protocol biopsies. The algorithms presented assume that
patients are medically appropriate for endoscopic treatment and surveillance. Patients with IND have elevated risk of gastric neoplasia and warrant follow-
up. The diagnosis of IND should be confirmed by a second pathologist with gastrointestinal expertise. If this is confirmed, patients should undergo repeat
high-quality endoscopy with HDWLE 1 IEE with biopsies obtained according to the systematic biopsy protocol, in addition to any biopsies targeted toward
visibly abnormal areas, in 6–12 months (assuming the baseline examination diagnosing IND was of sufficient quality). The subsequent management
algorithm is dictated by the presence vs absence of an associated visible lesion, and management should parallel that for visible vs nonvisible LGD. In
patients without confirmed IND on the repeat examination, surveillance should be according to the results of the systematic biopsies. GIM, gastric intestinal
metaplasia; GPMC, gastric premalignant condition; HDWLE, high-definition white light endoscopy; HGD, high-grade dysplasia; IEE, image-enhanced
endoscopy; IND, indefinite dysplasia; LGD, low-grade dysplasia.
© 2025 by The American College of Gastroenterology
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Management of Gastric Premalignant Conditions
19
(T1b). The management of early GC is outside of the scope of
these guidelines.
Nonendoscopic management of GPMC
Recommendations: GPMC nonendoscopic management
16. We recommend H. pylori eradication in patients with GPMC (AG,
GIM, and dysplasia) and resected EGC to reduce the risk of
progression to GC and metachronous EGC, respectively
(Moderate quality of evidence, strong recommendation).
17. We do not suggest the use of aspirin, nonsteroidal anti-
inflammatory drugs, COX-2 inhibitors, or antioxidants for
individuals with GPMC for the purpose of GC chemoprevention
(Very low quality of evidence, conditional recommendation).
H. pylori eradication
H. pylori is the dominant global risk factor for GC and has been
classified by the World Health Organization’s International Agency
forResearchonCancerasagroup1ordefinitecarcinogen(173).The
attributable risk is 75%–89% for noncardia gastric adenocarcinoma,
which initiates and perpetuates the carcinogenesis cascade (12).
H. pylori eradication is consistently associated with a significant
reduction of GC incidence and mortality (174). In patients with
high-risk GPMC, H. pylori eradication serves as an adjunct measure
because it is not sufficient alone to prevent progression, again
underscoring the role of endoscopic surveillance in individuals with
high-risk GPMC (174,175).
The literature supporting H. pylori eradication in patients
with GPMC comprises a range of studies, from population
eradication to eradication in patients with resected early GC. In
multiple RCTs (and meta-analyses of these RCTs), as well as
observational studies successful eradication of H. pylori was
associated with a substantial reduction in GC incidence and
mortality (176–178). In the meta-analysis of 22 studies (8 RCTs,
16 cohort) by Ford et al (176), H. pylori eradication was asso-
ciated with 46% and 39% risk reductions of GC incidence and
mortality, respectively, in studies with follow-up ranging from 4
to 22 years. The risk reduction is significantly greater in indi-
viduals without GPMC at baseline (234). In the meta-analysis by
Kahn et al, of 9 RCTs (6,967 patients) of H. pylori eradication in
patients with EGC after endoscopic resection, there was a 53%
reduction in GC incidence, in studies ranging from 3 to 6 years
of follow-up. Also in this study, patients with GPMC treated for
H. pylori infection demonstrated an improvement in histology, but
with a nonsignificant trend (OR 0.47, 95% CI 0.42–1.07) toward GC
incidence reduction(179)(see Supplement 1, Supplementary Digital
Content 1, http://links.lww.com/AJG/D556). As an aside, the gastric
mucosa-associated lymphoid tissue lymphoma is typically a low-
grade B-cell neoplasia strongly associated with H. pylori-driven
gastritis. A recent meta-analysis demonstrated a pooled complete
remission of 75% with H. pylori eradication, with the effect modifier
of t(11;18) status (180).
Until recently, the benefit of H. pylori eradication on GC in-
cidence and mortality had not been directly demonstrated in US
populations. However, 2 independent observational studies from
2020 to 2023 from US cohorts (a nationwide Veterans Health
Administration and a Kaiser Northern California Health System
cohort) demonstrated that H. pylori eradication resulted in
a substantial and significant risk reduction, albeit delayed (e.g.,
8 years post-eradication) (10,181).
Chemoprevention for GPMC
Apart from H. pylori eradication treatment, chemoprevention of
GC for patients with GPMC is not currently recommended
given the lack of potential agents and supporting data. Anti-
inflammatory agents and antioxidants may reduce the risk of
progression by inhibiting cytokines, prostaglandins, and an-
giogenesis (182). In secondary analyses, cardiovascular med-
ications have also been studied, including statins, metformin,
and aspirin. Quality prospective trials with GC incidence and
mortality as the primary endpoints are lacking. The existing
literature is compromised by heterogeneity, medication usage
precision (dosage, regularity, and duration), concurrent
medications, data completeness, and the population studied.
These data are further discussed in Supplement 1 (see Sup-
plementary Digital Content 1, http://links.lww.com/AJG/
D556).
General prevention measures
In patients with GPMC, general behavioral recommendations are
warranted related to tobacco and alcohol use, salt intake, and
fresh fruit and vegetable consumption given that all of these
factors are modifiable and may affect GC risk. Maintaining
a healthy weight is also important, although the association
between obesity and noncardia gastric adenocarcinoma is not
as robustly established as the association with cardia and
esophageal adenocarcinoma.
The quality of evidence related to the association between diet
and behavioral factors and GC risk, specifically among individ-
uals with GPMC, is low and the data are challenging to extrap-
olate due to heterogeneity in study design, population, exposure
assessment, confounder adjustment, and recall bias. Few studies
provide data specific to individuals with GPMC, and many
studies also do not provide GC outcome data according to ana-
tomic subsite. There are no data in US populations concerning
diet and behavioral factors and the risk of GPMC progression.
The uncertain benefit of positive diet and behavioral changes
about GC risk specifically is balanced by other known health
benefits. Tobacco use may have the strongest association with
GC among the behavioral factors, and patients with GPMC
should receive smoking cessation counseling. In Supplement 1
(see Supplementary Digital Content 1, http://links.lww.com/
AJG/D556), we describe relevant data regarding the associa-
tion between diet and behavioral factors and GC risk, em-
phasizing those studies that evaluated patients with GPMC or
suspected GPMC.
Chronic acid suppression on the risk of GC and GPMC
PPIs irreversibly inhibit the H1/K1 ATPase (proton pump)
leading to potent gastric acid suppression (183). Although PPIs
are now among the most widely prescribed medications world-
wide (e.g., gastroesophageal reflux disease and dyspepsia), the
long-term carcinogenic risk related to chronic PPI use is unclear.
Specifically, it is uncertain whether chronic hypochlorhydria due
to PPI use and the resultant hypergastrinemia and potential
gastric pancolonization of the antrum and corpus by H. pylori and
other microbes (and their byproducts) increases the risk of gastric
malignancy particularly in patients with GPMC. Potassium-
competitive acid blockers, the newer class of potent gastric acid-
suppressors that also inhibit the proton pump, have been less
studied about their association with gastric neoplastic risk (184)
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(see Supplement 1, Supplementary Digital Content 1, http://links.
lww.com/AJG/D556, for further discussion).
SPECIAL TOPICS: AIG AND GASTRIC POLYPS
Autoimmune Gastritis
Recommendations: AIG
18. Among individuals diagnosed with AIG, we recommend
assessment for H. pylori infection with a nonserological test,
eradication treatment if positive, and posttreatment testing to
confirm eradication (Low quality of evidence, strong
recommendation).
19. There is insufficient evidence to make a formal recommendation
on endoscopic surveillance in individuals with AIG. Given the
increased risk of type 1 neuroendocrine tumors (NETs) and the
possible increased risk of GC, individualized surveillance may be
considered (Low quality of evidence, conditional
recommendation).
AIG is an immune-mediated condition whereby autoanti-
bodies target and destroy parietal cells, resulting in progressive
inflammation and eventual replacement of the native oxyntic
mucosa with connective tissue (nonmetaplastic atrophy) or
nonnative epithelium (metaplastic atrophy), in a background
of chronic inflammation. Antral-sparing is the sine qua non of
AIG in the absence of prior or concurrent H. pylori infection,
based on systematic biopsies. The diagnosis is supported by
positive autoantibodies to parietal cells and intrinsic factor.
Autoantibodies alone have inadequate positive and negative
predictive value for the diagnosis. Pernicious anemia is a rare,
late-stage complication of AIG characterized by vitamin B12
deficiency, megaloblastic anemia, and usually with autoanti-
bodies to intrinsic factor (see Supplementary Figure 1, Sup-
plementary Digital Content 4, http://links.lww.com/AJG/
D559). AIG is a progressive condition without cure or evidence
of regression over time (185). There is a female:male pre-
dominance of approximately 3:1, and associations with older
age and autoimmune disorders (see further discussion in
Supplement 1, Supplementary Digital Content 1, http://links.
lww.com/AJG/D556).
AIG is a preneoplastic condition, and endoscopic surveillance
is indicated to allow for early detection and management of
neoplasia. The ongoing inflammation in AIG leads to pro-
gressive oxyntic gland loss and the replacement of native
glands with pyloric, intestinal, and pancreatic metaplasia and
variable fibrous tissue. The parietal cell loss and resulting
hypochlorhydria or achlorhydria lead to persistent stimulation
of gastrin production from the antrum. Gastrin is trophic for
both parietal and enterochromaffin-like cells. AIG is associ-
ated with well-differentiated NETs of enterochromaffin-like
cells (also termed type I gastric carcinoid tumors). However,
the independent association between AIG and gastric adeno-
carcinoma in the absence of concomitant H. pylori infection
has been called into question (186–188).
Based on recent data, in the absence of H. pylori infection, the
risk of gastric adenocarcinoma in patients with AIG seems to be
similar to that of the baseline general population (186). In another
Italian study ofpatients with corpus-restricted atrophy, at median
follow-up of 5 (1–17) years, the annual incidence rate person-year
of HGD/GC was 0.5% (187). However, caution is warranted given
the relatively short follow-up time of the recent studies from the
vantage point of cancer progression. Prior literature reporting
an increased association did not appropriately control for
current H. pylori infection, thus precluding assessment of an
independent association between AIG and gastric adenocar-
cinoma specifically (179,186,189–195). Indeed, most of these
studies were performed in an era before the formal discovery of
H. pylori or when H. pylori prevalence was substantially higher
than in the modern era. These findings underscore the im-
portance of testing for H. pylori in any patient with metaplastic
or nonmetaplastic AG.
There are no RCTs of surveillance vs no surveillance for the
purpose of early neoplasia detection in patients with histologi-
cally confirmed AIG. However, given the increased risk of gastric
NET and possibly gastric adenocarcinoma, endoscopic surveil-
lance is suggested in the context of shared decision-making. In
patients with pernicious anemia, there is evidence to suggest that
the risk of GC is highest within the first year of diagnosis, and
thus, endoscopy should be considered in patients with a new
diagnosis of pernicious anemia, with particular consideration of
women 50 years or older (196,197) (see Supplementary Algo-
rithm 1, Supplementary Digital Content 3, http://links.lww.com/
AJG/D558). Otherwise, there are limited data regarding risk
stratification parameters in individuals with AIG; accordingly, we
suggest that the endoscopic surveillance interval should be de-
termined based on the same risk stratification factors as described
above for GPMC in general (e.g., family history of GC, anatomic
extent, and severity of GPMC). Patients with AIG are also at
increased risk for nonneoplastic complications including other
autoimmune disorders, particularly autoimmune thyroid disease
and type I diabetes mellitus, nutritional deficiencies (due to
achlorhydria/hypochlorhydria),
and
dermatologic
manifes-
tations (198).
Gastric epithelial polyps
Recommendations: GEP
20. We recommend endoscopic resection of all gastric adenomas,
regardless of size, to exclude and prevent dysplasia and EGC.
For adenomas that are not amenable to endoscopic resection,
we recommend referral for surgical resection, if clinically
appropriate (Low quality of evidence, conditional
recommendation).
21. We could not make a recommendation on the endoscopic
resection of all hyperplastic polyps greater than 10 mm in size
based on the current evidence.
22. In individuals with GEP, with the exception of fundic gland
polyps, we recommend systematic gastric biopsies be obtained
from the surrounding mucosa given the high prevalence of
GPMC, H. pylori infection, and AIG in these patients (Very low
quality of evidence, conditional recommendation).
Diagnosis of GEP
GEPs are found in approximately 3%–10% of esophagogas-
troduodenoscopies performed in the United States, and most are
incidental fundic gland polyps (FGPs, 40%–77%), followed by
hyperplastic polyps (14%–40%) and gastric adenomas (3%–25%)
(199). However, there is regional variation, which may reflect
chronic PPI use (FGP association) and H. pylori prevalence (as-
sociation
with
hyperplastic
and
adenomatous
polyps)
(106,200,201). Most GEPs arise in the setting of inflammatory
conditions (e.g., H. pylori gastritis and AIG), and a limited
© 2025 by The American College of Gastroenterology
The American Journal of GASTROENTEROLOGY
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Management of Gastric Premalignant Conditions
21
number occurs in polyposis syndromes. Repeated episodes of
mucosal injury and repair ultimately may lead to genetic muta-
tions that induce neoplasia. Most polypoid gastric dysplastic
lesions arise in a background of gastritis and metaplasia. There-
fore, biopsy of the flat mucosa surrounding the gastric polyp and
Sydney protocol biopsies are indicated, unless the polyp is clearly
an FGP.
Sporadic FGPs are typically small, hyperemic, sessile and have
a smooth surface contour (Figure 7). They occur exclusively in the
gastric fundus and corpus. Occasionally sporadic FGPs harbor
surface dysplasia; however, the risk of progression for these
patients is essentially nil (202,203). FGPs may develop after long-
term PPI use and are not associated with an increased risk of
gastric adenocarcinoma. Multiple FGPs (.50) in young patients,
especially those not taking PPIs, should raise suspicion for FAP
and other polyposis syndromes (i.e., attenuated FAP, gastric ad-
enocarcinoma, proximal polyposis of the stomach [GAPPS], and
MUTYH-associated polyposis). These patients should be referred
for genetic evaluation and colonoscopy, and their management is
reviewed in detail in prior literature (204). Approximately one-
third of FGPs in patients with FAP have surface dysplasia, but
most do not progress except in patients with GAPPS (205).
Gastric hyperplastic polyps (particularly large ones) and ad-
enomas are considered premalignant conditions (GPMC). Gas-
tric hyperplastic polyps have a smooth, red buttered appearance
with white exudates. While usually small and dome shaped, they
can become lobulated or pedunculated with superficial erosions.
Hyperplastic polyps are associated with gastric atrophy with or
without intestinal metaplasia (206–208). Thus, it is important to
biopsy the surrounding mucosa with a systematic gastric sam-
pling protocol. Hyperplastic polyps may harbor dysplasia in
1.9%–19% of cases and undergo malignant transformation in up
to 2% ofcases (209,210). Neoplastic transformation is seen mostly
in hyperplastic polyps .10 mm. Hyperplasia of the foveolar
epithelium is a separate entity, with white flat lesions and
a foveolar pit pattern. Limited evidence suggests that foveolar
hyperplasia is a benign entity associated with chronic PPI use.
Sporadic gastric adenomas are rare. Polypoid gastritis-
associated dysplastic lesions have been traditionally classified as
adenomas, including by the World Health Organization (211).
Because gastritis-associated dysplastic polyps have been termed
“adenomas” (212–214) rather than “endoscopically defined
dysplastic
lesions,”
recent
guidelines
may
create
mis-
understanding (215,216). Adenomas or adenomatous polyps are
usually single lesions, pedunculated or sessile, in the antrum or
incisura. They have a velvety pink lobulated appearance. They
most often occur in the setting of H. pylori-associated gastric
atrophy with or without metaplasia, arguing for systematic bi-
opsies of the surrounding mucosa. Approximately 40% of ade-
nomatous polyps harbor dysplastic foci, particularly those $20
mm. Adenomatous gastric polyps are also strongly associated
with synchronous GC, which reflects the “field effect” of the
surrounding mucosa harboring other stages along the Correa
cascade (210,217,218). Gastric adenomas arising in the setting of
normal gastric mucosa rarely occur, and this is usually in the
setting of FAP (205,212,219).
Gastric NETs are typically hyperemic and multifocal but can
have diverse endoscopic presentations difficult to differentiate from
other GPMC. The diagnosis and management of NETs are beyond
the scope of this guideline and are reviewed elsewhere (220).
Endoscopic management of GEP
The endoscopic approach to GEP is based on histologic subtype,
polyp size, and morphologic features. However, during the index
Figure 7. Gastric epithelial polyps: endoscopy (HDWLE, NBI) and histology correlation. HDWLE, high definition white light endoscopy; NBI, narrow band imaging.
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Table 5. Knowledge gaps and future research directions for GPMC and gastric cancer
Gastric cancer screening in the United States
• Randomized clinical trials are needed to evaluate the utility of GC/GPMC screening on GC incidence and mortality, and potential harms of screening
• Risk prediction models for GC/GPMC are needed to identify the optimal screening population. Initial US studies may incorporate “convenience endoscopy” paired with
screening colonoscopy for patients at increased risk for GC. The optimal threshold for GC/GPMC screening using endoscopy alone without bundling with colonoscopy needs to
be evaluated thereafter
• The effectiveness of existing noninvasive biomarkers (e.g., pepsinogens), alone or in combination, needs to be evaluated for their effectiveness for screening high-risk GC/
GPMC populations. Novel noninvasive screening modalities (e.g., blood-based testing) are needed for GC/GPMC screening
• Barriers and adherence to GC/GPMC screening of eligible groups warrant investigation, particularly among marginalized high-risk groups
Diagnosis of GPMC
Endoscopic evaluation
• Implementation and validation of upper endoscopy quality metrics specifically targeting the gastric compartment (e.g., mucosal cleansing scores, gastric
photodocumentation, and GIM detection rate)
• Development of training interventions for US endoscopists for the diagnosis and management of GPMC/GC
• The role of novel imaging (e.g., LCI) and synergistic technologies (machine learning, AI) in clinical algorithms warrant evaluation, along with cost-effectiveness studies
Histopathologic evaluation
• Develop standardized gastric pathology reporting systems, with consideration of GPMC
• Advance methods to improve adherence to systematic biopsy protocols among gastroenterologists and related gastric pathology reporting among pathologists
• Evaluate the outcomes for the current histology markers of GIM high-risk subtypes (e.g., incomplete and extensive GIM)
• Implement methods to improve the interobserver variability for reporting dysplasia, with a focus on IND and LGD
• Develop protocols for the use of the OLGA/OLGIM system in the gastroenterology and pathology disciplines, and investigate patient outcomes
GPMC endoscopic surveillance and dysplasia treatment
• Develop registries for the evaluation of the clinical impact of GPMC surveillance programs (e.g., proportion of GC diagnosed as early GC, GC incidence, and GC 5-yr survival)
• Investigatethe optimal interval for endoscopic surveillance in patients diagnosed with GPMC according to a risk-stratified approach, which includes when to stop surveillance
• Develop robust risk prediction models that accurately predict AG/GIM progression in US populations and are prospectively validated
• Identify noninvasive (e.g., serum-based) and tissue-based markers of progression that are prospectively validated in US populations
• Prospective studies to evaluate the natural history of indeterminate and low-grade dysplasia
• Prospective studies to evaluate the optimal timeframe and approach to repeat endoscopic evaluation of nonvisible gastric dysplasia (i.e., “second-look endoscopy”)
• Health-system research on optimization of referrals to high-volume ESD centers/providers in the United States. Perform microsimulation analyses with US data to evaluate
the impact of ESD access and clinical outcomes for patients with dysplasia
• Develop and implement a standardized ESD curriculum in advanced endoscopy training programs
Nonendoscopic management of GPMC
• Enhanced efforts to identify chemoprevention agents for GPMC progression
• Develop robust interventional trials to understand the impact of diet and behavioral changes (e.g., smoking) on GPMC prevalence and GPMC progression
• Develop robust clinical trials to better understand the impact of chronic gastric acid suppression (e.g., PPI and PCAB) on GPMC and GPMC progression
Autoimmune gastritis
• Clarify the risk of adenocarcinoma in patients with autoimmune gastritis, with and without H. pylori infection
• Improve detection of autoimmune gastritis with attention to appropriate biopsy protocols
Gastric epithelial polyps
• Design studies to understand the natural history of hyperplastic polyps and adenomas, and the modulatory effects of background mucosal disorders (e.g., H. pylori infection
and GPMC)
• Larger studies describing the risk of dysplasia and carcinoma in gastric polyps (5–20 mm)
• Prospective studies describing the adequate time interval for surveillance after resection of hyperplastic polyps and adenomatous polyps
Education initiatives
• Training initiatives, following the example of East Asia programs, are imperative to improve outcomes related to the diagnosis of GPMC and (early) GC, incorporation of novel
imaging technologies, pathology protocols, and endoscopy therapeutics
AG, atrophic gastritis; AI, artificial intelligence; AIG, autoimmune gastritis; EGC, early gastric cancer; ESD, endoscopic submucosal dissection; GC, gastric cancer; GIM,
gastric intestinal metaplasia; GPMC, gastric premalignant condition; LCI, linked color imaging; OLGA, Operative Link on Gastritis Assessment; OLGIM, Operative Link on
Gastric Intestinal Metaplasia Assessment; PCAB, potassium-competitive acid blocker; PPI, proton pump inhibitor.
© 2025 by The American College of Gastroenterology
The American Journal of GASTROENTEROLOGY
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Management of Gastric Premalignant Conditions
23
endoscopy, the definitive histologic subtype may not be clear.
Therefore, obtaining biopsies from any GEP that is not an obvi-
ous FGP is recommended for histopathological assessment. One
meta-analysis showed that forceps biopsy of hyperplastic and
adenomatous polyps can miss foci of HGD or carcinoma. Spe-
cifically, 25% of these polyps were upgraded after complete ex-
cision, with gastric HGD in 16.7% and adenocarcinoma in 6.9%.
Upstaging is more frequent in lesions $20 mm, and lesions with
depressed or nodular features (160). If there are no contra-
indications, small GEP should be completely excised for both
diagnosis and therapy, considering that complete excision ismore
likely to reveal dysplasia neoplasia (221). Data extrapolated from
colon polypectomies suggest that diminutive polyps (#3 mm)
may be removed completely with forceps, but snare polypectomy
is suggested for polyps .3 mm (222,223). In patients with larger
polyps, concerns for bleeding, or incomplete resection, a “biopsy-
then-resect” approach is advised allowing time to discuss with the
patient the risks and benefits of endoscopic resection or referral.
The resection and surveillance plan should be tailored to the
polyp subtype if previous histology results are available. FGPs (in
the absence of FAP) seldom harbor dysplasia or adenocarcinoma
(202,203). Excision of FGPs is only suggested if the polyp
is .10 mm or ulcerated. Hyperplastic polyps may harbor dys-
plasia or carcinoma. Despite heterogeneity in the literature, with
most reports being .30 years old or from high-incidence coun-
tries, carcinoma foci were frequently reported in polyps .10 mm
(224,225). Therefore, several guidelines recommend resection of
all hyperplastic polyps .10 mm or .5 mm (29,226). However, in
weighing the uncertain benefit due to quality of the data and
indirectness with the potential risk of complications due to re-
section (e.g., bleeding), we could not make a recommendation
regarding the resection of all hyperplastic polyps .5 mm, al-
though it seems prudent to resect hyperplastic polyps .10 mm.
Adenomas are more likely to harbor microscopic carcinoma foci
(5%–10% in small case series and up to 50% in polyps .20 mm)
(218). Most consortia recommend resection of all adenomas re-
gardless of size (29,216,227). Similar to flat lesions with dysplasia,
hyperplastic polyps or adenomas #10 mm can be removed with
EMR, but ESD should be considered for lesions .10–20 mm
(160,167).
Most international GI societies recommend surveillance en-
doscopy after resection of hyperplastic polyps or adenomas, but
high-quality data informing optimal surveillance intervals are
lacking (29,216). Current evidence demonstrates no clear benefit
from performing surveillance endoscopy after complete excision
of high-risk sporadic FGP (228). Considering that gastric ade-
nomas are strongly associated with synchronous neoplasia (up to
30%), follow-up endoscopy is recommended within 12 months
regardless of background mucosa (e.g., GIM). In patients with
resected hyperplastic polyps .10 mm, surveillance endoscopy
can be considered in 12 months (207,229). Subsequent surveil-
lance endoscopies for adenomas and hyperplastic polyps are
dictated by the background mucosa, per GPMC surveillance
recommendations herein.
CONCLUSIONS
The GPMC research agenda to support the implementation,
evolution, and optimization of clinical practice related to the
diagnosis and management of GPMC in the United States is
extensive (Table 5). Critical areas include the study of health
outcomes related to GPMC surveillance, screening for GC, bar-
riers to prevention in marginalized populations, novel diagnostic
and prognostic biomarkers, advancement of endoscopic tech-
nologies (e.g., IEE, AI, and therapeutics) and gastroenterology
training, novel H. pylori treatment and adjuvant measures, and
chemoprevention, specifically as these relate to the impact on GC
incidence and mortality. Coordination with pathology colleagues
at the local and national levels is imperative. Research in AIG and
GEP is needed, each area with substantial knowledge gaps. In
parallel, training initiatives, following the example of East Asia
programs, are critical, particularly in the areas of endoscopic di-
agnosis and therapeutics.
These ACG Guidelines for the management of GPMC are
a paradigm shift in US clinical practice. Implementation and
change in clinical practice will require concrete targets and in-
clude training and quality initiatives. It is anticipated that this will
begin to address the marked US GC disparity, and the burden on
minority and marginalized populations. The overarching goals
are to reduce GC incidence in the United States, increase the
detection of early stage disease (early GC), and to significantly
increase the 5-year survival rates in the near term.
ACKNOWLEDGEMENTS
This guideline was produced in collaboration with the Practice
Parameters Committee of the American College of Gastroenterology.
The Committee gives special thanks to Brijen Shah, MD, who served
as the guideline monitor for this document; Jennifer Westrick who
performed the systematic review of literature; and Jose Ignacio
Vargas, MD (Department of Gastroenterology, Faculty of Medicine,
Pontificia Universidad Cat´olica de Chile, Santiago, Chile), for
providing endoscopic photographs.
CONFLICTS OF INTEREST
Guarantor of the article: Douglas R. Morgan, MD, MPH, FACG.
Specific author contributions: All authors contributed in the
analysis and interpretation of evidence, drafting of the manuscript,
and critical revision of the manuscript for important intellectual
content.
Financial support: NCI P01CA028842, R01CA190612,
K07CA125588, and P30CA068485 (D.R.M.); VA ICX002027A and
NIH P30 DK120515 (S.C.S.); FONIS SA19/0188, European Union’s
Horizon 2020 research and innovation program grant agreement no.
825832 FONDECYT 1230504, and FONDAP 152220002 (A.R.).
Potential competing interests: D.R.M.: research support: Panbela
Therapeutics, Thorne Research, American Molecular Labs. J.E.C.,
D.L. and E.A.M.: None. S.C.S.: ad hoc consultant and advisor to
Phathom Pharmaceuticals and RedHill Biopharma. A.R.: research
support: American Molecular Labs.
REFERENCES
1.
Sung H, Ferlay J, Siegel RL, et al. Global cancer statistics 2020:
GLOBOCAN estimates of incidence and mortality worldwide for 36
cancers in 185 countries. CA Cancer J Clin 2021;71(3):209–49.
2.
Siegel RL, Miller KD, Jemal A. Cancer statistics, 2020. CA Cancer J Clin
2020;70(1):7–30.
3.
Siegel RL, Giaquinto AN, Jemal A. Cancer statistics, 2024. CA Cancer J
Clin 2024;74(1):12–49.
4.
Huang RJ, Epplein M, Hamashima C, et al. An approach to the primary
and secondary prevention of gastric cancer in the United States. Clin
Gastroenterol Hepatol 2022;20(10):2218–28.e2.
5.
Shah SC, McKinley M, Gupta S, et al. Population-based analysis of
differences in gastric cancer incidence among races and ethnicities in
The American Journal of GASTROENTEROLOGY
VOLUME 00 | MONTH 2025
www.amjgastro.com
STOMACH
Morgan et al
24
individuals age 50 years and older. Gastroenterology 2020;159(5):
1705–14.e2.
6.
Pabla BS, Shah SC, Corral JE, et al. Increased incidence and mortality of
gastric cancer in immigrant populations from high to low regions of
incidence: A systematic review and meta-analysis. Clin Gastroenterol
Hepatol 2020;18(2):347–59.e5.
7.
Thrift AP, El-Serag HB. Burden of gastric cancer. Clin Gastroenterol
Hepatol 2020;18(3):534–42.
8.
Rustgi SD, McKinley M, McBay B, et al. Epidemiology of gastric
malignancies 2000–2018 according to histology: A population-based
analysis of incidence and temporal trends. Clin Gastroenterol Hepatol
2023;21(13):3285–95.e8.
9.
Siegel RL, Miller KD, Fuchs HE, et al. Cancer statistics, 2022. CA Cancer
J Clin 2022;72(1):7–33.
10.
Li D, Jiang SF, Lei NY, et al. Effect of Helicobacter pylori eradication
therapy on the incidence of noncardia gastric adenocarcinoma in a large
diverse population in the United States. Gastroenterology 2023;165(2):
391–401.e2.
11.
Moss SF, Shah SC, Tan MC, et al. Evolving concepts in Helicobacter
pylori management. Gastroenterology 2024;166(2):267–83.
12.
Plummer M, Franceschi S, Vignat J, et al. Global burden of gastric cancer
attributable to Helicobacter pylori. Int J Cancer 2015;136(2):487–90.
13.
Chiarello MM, Fico V, Pepe G, et al. Early gastric cancer: A challenge in
Western countries. World J Gastroenterol 2022;28(7):693–703.
14.
GuyattG,OxmanAD,AklEA,etal.GRADEguidelines:1.Introduction-
GRADE evidence profiles and summary of findings tables. J Clin
Epidemiol 2011;64(4):383–94.
15.
Balshem H, Helfand M, Sch¨unemann HJ, et al. GRADE guidelines: 3.
Rating the quality of evidence. J Clin Epidemiol 2011;64(4):401–6.
16.
Andrews JC, Sch¨unemann HJ, Oxman AD, et al. GRADE guidelines: 15.
Goingfromevidencetorecommendation-determinantsofarecommendation’s
direction and strength. J Clin Epidemiol 2013;66(7):726–35.
17.
Altayar O, Davitkov P, Shah SC, et al. AGA technical review on gastric
intestinal metaplasia-epidemiology and risk factors. Gastroenterology
2020;158(3):732–44.e16.
18.
Lenti MV, Rugge M, Lahner E, et al. Autoimmune gastritis. Nat Rev Dis
Primers 2020;6(1):56.
19.
Yaghoobi M, Bijarchi R, Narod SA. Family history and the risk of gastric
cancer. Br J Cancer 2010;102(2):237–42.
20.
Oliveira C, Pinheiro H, Figueiredo J, et al. Familial gastric cancer:
Genetic susceptibility, pathology, and implications for management.
Lancet Oncol 2015;16(2):e60–70.
21.
Usui Y, Taniyama Y, Endo M, et al. Helicobacter pylori, homologous-
recombination genes, and gastric cancer. N Engl J Med 2023;388(13):
1181–90.
22.
Gawron AJ, Shah SC, Altayar O, et al. AGA technical review on gastric
intestinal metaplasia-natural history and clinical outcomes.
Gastroenterology 2020;158(3):705–31.e5.
23.
Dong EY, Giap AQ, Lustigova E, et al. Gastric cancer screening in first-
degree relatives: A pilot study in a diverse integrated healthcare system.
Clin Transl Gastroenterol 2022;13(11):e00531.
24.
Slavin TP, Weitzel JN, Neuhausen SL, et al. Genetics of gastric cancer:
What do we know about the genetic risks? Transl Gastroenterol Hepatol
2019;4:55.
25.
Ajani JA, D’Amico TA, Bentrem DJ, et al. Gastric cancer, version 2.2022,
NCCN clinical practice guidelines in oncology. J Natl Compr Canc Netw
2022;20(2):167–92.
26.
Garcia-Pelaez J, Barbosa-Matos R, São Jos´e C, et al. Gastric cancer
genetic predisposition and clinical presentations: Established heritable
causes and potential candidate genes. Eur J Med Genet 2022;65(1):
104401.
27.
Zaffaroni G, Mannucci A, Koskenvuo L, et al. Updated European
guidelines for clinical management of familial adenomatous polyposis
(FAP), MUTYH-associated polyposis (MAP), gastric adenocarcinoma,
proximal polyposis of the stomach (GAPPS) and other rare
adenomatous polyposis syndromes: A joint EHTG-ESCP revision. Br J
Surg 2024;111(5):znae070.
28.
M¨ulder DT, O’Mahony JF, Doubeni CA, et al. The ethics of cancer
screening based on race and ethnicity. Ann Intern Med 2024;177(9):
1259–64.
29.
Banks M, Graham D, Jansen M, et al. British Society of Gastroenterology
guidelines on the diagnosis and management of patients at risk of gastric
adenocarcinoma. Gut 2019;68(9):1545–75.
30.
Giaquinto AN, Miller KD, Tossas KY, et al. Cancer statistics for African
American/Black people 2022. CA Cancer J Clin 2022;72(3):202–29.
31.
Miller KD, Ortiz AP, Pinheiro PS, et al. Cancer statistics for the US
Hispanic/Latino population, 2021. CA Cancer J Clin 2021;71(6):466–87.
32.
Dinis-Ribeiro M, Shah S, El-Serag H, et al. The road to a world-unified
approach to the management of patients with gastric intestinal
metaplasia: A review of current guidelines. Gut 2024;73(10):1607–17.
33.
Malfertheiner P, Megraud F, Rokkas T, et al. Management of
Helicobacter pylori infection: The Maastricht VI/Florence consensus
report. Gut 2022;71(9):1724–62.
34.
Cubiella J, P´erez Aisa ´A, Cuatrecasas M, et al. Gastric cancer screening in
low incidence populations: Position statement of AEG, SEED and SEAP.
Gastroenterol Hepatol 2021;44(1):67–86.
35.
Jun JK, Choi KS, Lee HY, et al. Effectiveness of the Korean National
Cancer Screening Program in reducing gastric cancer mortality.
Gastroenterology 2017;152(6):1319–28.e7.
36.
Hamashima C, Ogoshi K, Okamoto M, et al. A community-based, case-
control study evaluating mortality reduction from gastric cancer by
endoscopic screening in Japan. PLoS One 2013;8(11):e79088.
37.
Chen Q, Yu L, Hao CQ, et al. Effectiveness of endoscopic gastric cancer
screening in a rural area of Linzhou, China: Results from a case-control
study. Cancer Med 2016;5(9):2615–22.
38.
Hosokawa O, Miyanaga T, Kaizaki Y, et al. Decreased death from gastric
cancer by endoscopic screening: Association with a population-based
cancer registry. Scand J Gastroenterol 2008;43(9):1112–5.
39.
Matsumoto S, Yamasaki K, Tsuji K, et al. Results of mass endoscopic
examination for gastric cancer in Kamigoto Hospital, Nagasaki
Prefecture. World J Gastroenterol 2007;13(32):4316–20.
40.
Hamashima C, Ogoshi K, Narisawa R, et al. Impact of endoscopic
screening on mortality reduction from gastric cancer. World J
Gastroenterol 2015;21(8):2460–6.
41.
Ryu JE, Choi E, Lee K, et al. Trends in the performance of the Korean
National Cancer Screening Program for Gastric Cancer from 2007 to
2016. Cancer Res Treat 2022;54(3):842–9.
42.
Zhang X, Li M, Chen S, et al. Endoscopic screening in Asian countries is
associated with reduced gastric cancer mortality: A meta-analysis and
systematic review. Gastroenterology 2018;155(2):347–54.e9.
43.
Choi KS, Jun JK, Suh M, et al. Effect of endoscopy screening on stage at
gastric cancer diagnosis: Results of the National Cancer Screening
Programme in Korea. Br J Cancer 2015;112(3):608–12.
44.
Hong S, Won YJ, Lee JJ, et al. Cancer statistics in Korea: Incidence,
mortality, survival,and prevalencein 2018.Cancer Res Treat 2021;53(2):
301–15.
45.
Matsuda T, Ajiki W, Marugame T, et al. Population-based survival of
cancer patients diagnosed between 1993 and 1999 in Japan: A
chronological and international comparative study. Jpn J Clin Oncol
2011;41(1):40–51.
46.
Stomach Cancer. Surveillance, Epidemiology, and End Results (SEER)
Program Web site. 2022. (http://seer.cancer.gov/statfacts/html/
stomach.html). Accessed September 1, 2024.
47.
Huang RJ, Koh H, Hwang JH, et al. A summary of the 2020 Gastric Cancer
Summit at Stanford University. Gastroenterology 2020;159(4):1221–6.
48.
Lee HY, Park EC, Jun JK, et al. Comparing upper gastrointestinal X-ray
and endoscopy for gastric cancer diagnosis in Korea. World J
Gastroenterol 2010;16(2):245–50.
49.
Cho E, Kang MH, Choi KS, et al. Cost-effectiveness outcomes of the
national gastric cancer screening program in South Korea. Asian Pac J
Cancer Prev 2013;14(4):2533–40.
50.
Chang HS, Park EC, Chung W, et al. Comparing endoscopy and upper
gastrointestinal X-ray for gastric cancer screening in South Korea: A
cost-utility analysis. Asian Pac J Cancer Prev 2012;13(6):2721–8.
51.
Areia M, Spaander MC, Kuipers EJ, et al. Endoscopic screening for
gastric cancer: A cost-utility analysis for countries with an intermediate
gastric cancer risk. United European Gastroenterol J 2018;6(2):192–202.
52.
Huang HL, Leung CY, Saito E, et al. Effect and cost-effectiveness of
national gastric cancer screening in Japan: A microsimulation modeling
study. BMC Med 2020;18(1):257.
53.
Saumoy M, Schneider Y, Shen N, et al. Cost effectiveness of gastric
cancer screening according to race and ethnicity. Gastroenterology
2018;155(3):648–60.
54.
Shah SC, Canakis A, Peek RM Jr, et al. Endoscopy for gastric cancer
screening is cost effective for Asian Americans in the United States. Clin
Gastroenterol Hepatol 2020;18(13):3026–39.
© 2025 by The American College of Gastroenterology
The American Journal of GASTROENTEROLOGY
STOMACH
Management of Gastric Premalignant Conditions
25
55.
Aikou S, Ohmoto Y, Gunji T, et al. Tests for serum levels of trefoil factor
family proteins can improve gastric cancer screening. Gastroenterology
2011;141(3):837–45.e1–7.
56.
Yamaguchi Y, Nagata Y, Hiratsuka R, et al. Gastric cancer screening by
combined assay for serum anti-Helicobacter pylori IgG antibody and
serum pepsinogen levels: The ABC method. Digestion. 2016;93(1):13–8.
57.
Elmunzer BJ, Anderson MA, Mishra G, et al. Quality indicators
common to all gastrointestinal endoscopic procedures. Am J
Gastroenterol 2024;119(9):1781–91.
58.
Nagula S, Parasa S, Laine L, et al. AGA clinical practice update on high-
quality upper endoscopy: Expert review. Clin Gastroenterol Hepatol
2024;22(5):933–43.
59.
Alexandre L, Tsilegeridis-Legeris T, Lam S. Clinical and endoscopic
characteristics associated with post-endoscopy upper gastrointestinal
cancers: A systematic review and meta-analysis. Gastroenterology 2022;
162(4):1123–35.
60.
Menon S, Trudgill N. How commonly is upper gastrointestinal cancer
missed at endoscopy? A meta-analysis. Endosc Int Open 2014;2:E46–50.
61.
Hernanz N, Rodríguez de Santiago E, Marcos Prieto HM, et al.
Characteristics and consequences of missed gastric cancer: A
multicentric cohort study. Dig Liver Dis 2019;51(6):894–900.
62.
Burke E, Harkins P, Moriarty F, et al. Does premedication with
mucolytic agents improve mucosal visualization during
oesophagogastroduodenoscopy: A systematic review and meta-analysis.
Surg Res Pract 2021;2021:1570121.
63.
Monrroy H, Vargas JI, Glasinovic E, et al. Use of N-acetylcysteine plus
simethicone to improve mucosal visibility during upper GI endoscopy:
A double-blind, randomized controlled trial. Gastrointest Endosc 2018;
87(4):986–93.
64.
Neale JR, James S, Callaghan J, et al. Premedication with
N-acetylcysteine and simethicone improves mucosal visualization
during gastroscopy: A randomized, controlled, endoscopist-blinded
study. Eur J Gastroenterol Hepatol 2013;25(7):778–83.
65.
Kuo CH, Sheu BS, Kao AW, et al. A defoaming agent should be used with
pronase premedication to improve visibility in upper gastrointestinal
endoscopy. Endoscopy 2002;34(7):531–4.
66.
Khan R, Gimpaya N, Vargas JI, et al. The Toronto Upper
Gastrointestinal Cleaning Score: A prospective validation study.
Endoscopy 2023;55(2):121–8.
67.
Zhang Q, Chen ZY, Chen CD, et al. Training in early gastric cancer
diagnosis improves the detection rate of early gastric cancer: An
observational study in China. Medicine (Baltimore) 2015;94(2):e384.
68.
Yao K, Uedo N, Muto M, et al. Development of an e-learning system for
teaching endoscopists how to diagnose early gastric cancer: Basic
principles for improving early detection. Gastric Cancer 2017;20(Suppl
1):28–38.
69.
Teh JL, Tan JR, Lau LJ, et al. Longer examination time improves
detection of gastric cancer during diagnostic upper gastrointestinal
endoscopy. Clin Gastroenterol Hepatol 2015;13(3):480–7.e2.
70.
Gao Y, Cai MX, Tian B, et al. Setting 6-minute minimal examination
time improves the detection of focal upper gastrointestinal tract lesions
during endoscopy: A multicenter prospective study. Clin Transl
Gastroenterol 2023;14(8):e00612.
71.
Manfredi G, Pedaci M, Iiritano E, et al. Impact of improved upper
endoscopy quality on detection of gastric precancerous lesions. Eur J
Gastroenterol Hepatol 2023;35(3):285–7.
72.
Kim TJ, Pyo JH, Byun YH, et al. Interval advanced gastric cancer after
negative endoscopy. Clin Gastroenterol Hepatol 2023;21(5):1205–13.e2.
73.
Emura F, Sharma P, Arantes V, et al. Principles and practice to facilitate
complete photodocumentation of the upper gastrointestinal tract:
World Endoscopy Organization position statement. Dig Endosc 2020;
32(2):168–79.
74.
Yao K. The endoscopic diagnosis of early gastric cancer. Ann
Gastroenterol 2013;26(1):11–22.
75.
ASGE Technology Committee. High-definition and high-magnification
endoscopes. Gastrointest Endosc 2014;80(6):919–27.
76.
Honing J, Keith Tan W, Dieninyte E, et al. Adequacy of endoscopic
recognition and surveillance of gastric intestinalmetaplasiaand atrophic
gastritis: A multicentre retrospective study in low incidence countries.
PLoS One 2023;18(6):e0287587.
77.
Na HK, Choi KD, Park YS, et al. Endoscopic scoring system for gastric
atrophy and intestinal metaplasia: Correlation with OLGA and OLGIM
staging: A single-center prospective pilot study in Korea. Scand J
Gastroenterol 2022;57(9):1097–104.
78.
Yashima K, Onoyama T, Kurumi H, et al. Current status and future
perspective of linked color imaging for gastric cancer screening: A
literature review. J Gastroenterol 2023;58:1–13.
79.
Bjork JT, Geenen JE, Soergel KH, et al. Endoscopic evaluation of large
gastric folds: A comparison of biopsy techniques. Gastrointest Endosc
1977;24(1):22–3.
80.
Machado RS, Viriato A, Kawakami E, et al. The regular arrangement of
collecting venules pattern evaluated by standard endoscope and the
absenceofantrumnodularityarehighlyindicativeofHelicobacterpylori
uninfected gastric mucosa. Dig Liver Dis 2008;40(1):68–72.
81.
Uedo N, Yao K. Endoluminal diagnosis of early gastric cancer and its
precursors: Bridging the gap between endoscopy and pathology. Adv
Exp Med Biol 2016;908:293–316.
82.
Red´een S, Petersson F, J¨onsson KA, et al. Relationship of gastroscopic
features to histological findings in gastritis and Helicobacter pylori
infection in a general population sample. Endoscopy. 2003;35(11):
946–50.
83.
Quach DT, Hiyama T. Assessment of endoscopic gastric atrophy
according to the Kimura-Takemoto classification and its potential
application in daily practice. Clin Endosc 2019;52(4):321–7.
84.
Shah SC, Piazuelo MB, Kuipers EJ, et al. AGA clinical practice update on
the diagnosis and management of atrophic gastritis: Expert review.
Gastroenterology 2021;161(4):1325–32.e7.
85.
Pimentel-Nunes P, Dinis-Ribeiro M, Soares JB, et al. A multicenter
validation of an endoscopic classification with narrow band imaging for
gastric precancerous and cancerous lesions. Endoscopy 2012;44(3):236–46.
86.
An JK, Song GA, Kim GH, et al. Marginal turbid band and light blue
crest, signs observed in magnifying narrow-band imaging endoscopy,
are indicative of gastric intestinal metaplasia. BMC Gastroenterol 2012;
12:169.
87.
Uedo N, Ishihara R, Iishi H, et al. A new method of diagnosing gastric
intestinal metaplasia: Narrow-band imaging with magnifying
endoscopy. Endoscopy 2006;38(8):819–24.
88.
Kanemitsu T, Yao K, Nagahama T, et al. Extending magnifying NBI
diagnosis of intestinal metaplasia in the stomach: The white opaque
substance marker. Endoscopy 2017;49(6):529–35.
89.
Kawamura M, Koike T, Ogata Y, et al. Endoscopic grading of gastric
intestinal metaplasia using magnifying and nonmagnifying narrow-
band imaging endoscopy. Diagnostics (Basel) 2022;12:3012.
90.
Tiankanon K, Pittayanon R, Faknak N, et al. Diagnostic validity and
learning curve of non-NBI expert endoscopists in gastric intestinal
metaplasia diagnosis. Surg Endosc 2023;37(9):6771–8.
91.
Axon A. Symptoms and diagnosis of gastric cancer at early curable stage.
Best Pract Res Clin Gastroenterol 2006;20(4):697–708.
92.
Rodríguez-Carrasco M, Esposito G, Libˆanio D, et al. Image-enhanced
endoscopy for gastric preneoplastic conditions and neoplastic lesions: A
systematic review and meta-analysis. Endoscopy 2020;52(12):1048–65.
93.
Kotachi T, Ito M, Boda T, et al. Clinical significance of reddish depressed
lesions observed in the gastric mucosa after Helicobacter pylori
eradication. Digestion. 2018;98(1):48–55.
94.
Price AB. The Sydney System: Histological division. J Gastroenterol
Hepatol 1991;6(3):209–22.
95.
Dixon MF, Genta RM, Yardley JH, et al. Classification and grading of
gastritis. The updated Sydney System. International Workshop on the
Histopathology of Gastritis, Houston 1994. Am J Surg Pathol 1996;
20(10):1161–81.
96.
Misiewicz JJ. The Sydney System: A new classification of gastritis.
Introduction. J Gastroenterol Hepatol 1991;6(3):207–8.
97.
Isajevs S, Savcenko S, Liepniece-Karele I, et al. High-risk individuals for
gastric cancer would be missed for surveillance without subtyping of
intestinal metaplasia. Virchows Arch 2021;479(4):679–86.
98.
Shah SC, Gawron AJ, Mustafa RA, et al. Histologic subtyping of gastric
intestinal metaplasia: Overview and considerations for clinical practice.
Gastroenterology 2020;158(3):745–50.
99.
Du S, Yang Y, Fang S, et al. Gastric cancer risk of intestinal metaplasia
subtypes: A systematic review and meta-analysis of cohort studies. Clin
Transl Gastroenterol 2021;12(10):e00402.
100. Gonzalez CA, Sanz-Anquela JM, Gisbert JP, et al. Utility of subtyping
intestinal metaplasia as marker of gastric cancer risk. A review of the
evidence. Int J Cancer 2013;133(5):1023–32.
101. Piazuelo MB, Bravo LE, Mera RM, et al. The Colombian
chemoprevention trial: 20-year follow-up of a cohort of patients with
gastric precancerous lesions. Gastroenterology 2021;160(4):
1106–17.e3.
The American Journal of GASTROENTEROLOGY
VOLUME 00 | MONTH 2025
www.amjgastro.com
STOMACH
Morgan et al
26
102. Waters KM, Salimian KJ, Assarzadegan N, et al. Cell polarity (the ‘four
lines’) distinguishes gastric dysplasia from epithelial changes in reactive
gastropathy. Histopathology 2021;78(3):453–8.
103. Park DY, Srivastava A, Kim GH, et al. Adenomatous and foveolar gastric
dysplasia: Distinct patterns of mucin expression and background
intestinal metaplasia. Am J Surg Pathol 2008;32(4):524–33.
104. Sonnenberg A, Genta RM. Changes in the gastric mucosa with aging.
Clin Gastroenterol Hepatol 2015;13:2276–81.
105. Parbhu SK, Shah SC, Sossenheimer MJ, et al. Index diagnoses of gastric
intestinal metaplasia in the United States: Patient characteristics,
endoscopic findings, and clinical practice patterns at a large tertiary care
center. Therap Adv Gastroenterol 2022;15:17562848221117640.
106. Sonnenberg A, Genta RM. Prevalence of benign gastric polyps in a large
pathology database. Dig Liver Dis 2015;47(2):164–9.
107. Marques-Silva L, Areia M, Elvas L, et al. Prevalence of gastric
precancerous conditions: A systematic review and meta-analysis. Eur J
Gastroenterol Hepatol 2014;26(4):378–87.
108. Laszkowska M, Truong H, Faye AS, et al. Prevalence of extensive and
limited gastric intestinal metaplasia and progression to dysplasia and
gastric cancer. Dig Dis Sci 2022;67(8):3693–701.
109. Lauwers GY, Riddell RH. Gastric epithelial dysplasia. Gut 1999;45(5):784–90.
110. Rokkas T, Sechopoulos P, Pistiolas D, et al. Helicobacter pylori infection
and gastric histology in first-degree relatives of gastric cancer patients: A
meta-analysis. Eur J Gastroenterol Hepatol. 2010;22(9):1128–33.
111. Sotelo S, Manterola C, Otzen T, et al. Prevalence of gastric preneoplastic
lesions in first-degree relatives of patients with gastric cancer: A cross-
sectional study. J Gastrointest Cancer 2023;54(2):513–9.
112. El-Omar EM, Oien K, Murray LS, et al. Increased prevalence of
precancerous changes in relatives of gastric cancer patients: Critical role
of H. pylori. Gastroenterology. 2000;118(1):22–30.
113. Rugge M, de Boni M, Pennelli G, et al. Gastritis OLGA-staging and
gastric cancer risk: A twelve-year clinico-pathological follow-up study.
Aliment Pharmacol Ther 2010;31(10):1104–11.
114. Namekata T, Miki K, Kimmey M, et al. Chronic atrophic gastritis and
Helicobacter pylori infection among Japanese Americans in Seattle. Am J
Epidemiol. 2000;151(8):820–30.
115. Weck MN, Brenner H. Prevalence of chronic atrophic gastritis in different
parts of the world. Cancer Epidemiol Biomarkers Prev 2006;15(6):1083–94.
116. Choi CE, Sonnenberg A, Turner K, et al. High prevalence of gastric
preneoplastic lesions in East Asians and Hispanics in the USA. Dig Dis
Sci 2015;60(7):2070–6.
117. Adamu MA, Weck MN, Gao L, et al. Incidence of chronic atrophic
gastritis: Systematic review and meta-analysis of follow-up studies. Eur J
Epidemiol 2010;25(7):439–48.
118. Tan MC, Jamali T, Nguyen TH, et al. Race/ethnicity and birthplace as
risk factors for gastric intestinal metaplasia in a multiethnic
United States population. Am J Gastroenterol 2022;117(2):280–7.
119. Marcos-PintoR, CarneiroF, Dinis-RibeiroM,etal. First-degreerelatives
of patients with early-onset gastric carcinoma show even at young ages
a high prevalence of advanced OLGA/OLGIM stages and dysplasia.
Aliment Pharmacol Ther 2012;35(12):1451–9.
120. Song H, Ekheden IG, Zheng Z, et al. Incidence of gastric cancer among
patients with gastric precancerous lesions: Observational cohort study in
a low risk Western population. BMJ 2015;351:h3867.
121. Dinis-Ribeiro M, Lopes C, da Costa-Pereira A, et al. A follow up model
for patients with atrophic chronic gastritis and intestinal metaplasia.
J Clin Pathol 2004;57(2):177–82.
122. Nieuwenburg SAV, Mommersteeg MC, Eikenboom EL, et al. Factors
associated with the progression of gastric intestinal metaplasia: A
multicenter, prospective cohort study. Endosc Int Open 2021;9(3):
E297–305.
123. Lee JWJ,Zhu F, SrivastavaS, etal. Severityof gastricintestinalmetaplasia
predicts the risk of gastric cancer: A prospective multicentre cohort
study (GCEP). Gut 2022;71(5):854–63.
124. Seyyedsalehi MS, Mohebbi E, Tourang F, et al. Association of dietary
nitrate, nitrite, and N-nitroso compounds intake and gastrointestinal
cancers: A systematic review and meta-analysis. Toxics 2023;11(2):190.
125. den Hollander WJ, Holster IL, den Hoed CM, et al. Surveillance of
premalignant gastric lesions: A multicentre prospective cohort study
from low incidence regions. Gut 2019;68(4):585–93.
126. Latorre G, Silva F, Montero I, et al. Comparison of OLGA and OLGIM as
predictorsof gastric cancer in a Latin Americanpopulation:The ECHOS
Study. Gut 2024;73(10):e18.
127. M¨ulder DT, Hahn AI, Huang RJ, et al. Prevalence of gastric precursor
lesions in countries with differential gastric cancer burden: A systematic
review and meta-analysis. Clin Gastroenterol Hepatol 2024;22(8):
1605–17.e46.
128. Shah SC. Improving the endoscopic detection and management of
gastric intestinal metaplasia through training: A practical guide.
Gastroenterology 2022;163(4):806–11.
129. Li D, Bautista MC, Jiang SF, et al. Risks and predictors of gastric
adenocarcinoma in patients with gastric intestinal metaplasia and
dysplasia: A population-based study. Am J Gastroenterol 2016;111(8):
1104–13.
130. Shao L, Li P, Ye J, et al. Risk of gastric cancer among patients with gastric
intestinal metaplasia. Int J Cancer 2018;143(7):1671–7.
131. Yue H, Shan L, Bin L. The significance of OLGA and OLGIM staging
systems in the risk assessment of gastric cancer: A systematic review and
meta-analysis. Gastric Cancer 2018;21(4):579–87.
132. Capelle LG, de Vries AC, Haringsma J, et al. The staging of gastritis with
the OLGA system by using intestinal metaplasia as an accurate
alternative for atrophic gastritis. Gastrointest Endosc 2010;71(7):
1150–8.
133. Uemura N, Okamoto S, Yamamoto S, et al. Helicobacter pylori infection
and the development of gastric cancer. N Engl J Med. 2001;345(11):
784–9.
134. Chapelle N, P´eron M, Qu´en´eherv´e L, et al. Long-term follow-up of
gastric precancerous lesions in a low GC incidence area. Clin Transl
Gastroenterol 2020;11(12):e00237.
135. Pittayanon R, Rerknimitr R, Klaikaew N, et al. The risk of gastric cancer
in patients with gastric intestinal metaplasia in 5-year follow-up.
Aliment Pharmacol Ther 2017;46(1):40–5.
136. Wei N, Zhou M, Lei S, et al. A meta-analysis and systematic review on
subtypes of gastric intestinal metaplasia and neoplasia risk. Cancer Cell
Int 2021;21(1):173.
137. Coker OO, Dai Z, Nie Y, et al. Mucosal microbiome dysbiosis in gastric
carcinogenesis. Gut 2018;67(6):1024–32.
138. Huang KK, Ramnarayanan K, Zhu F, et al. Genomic and epigenomic
profiling of high-risk intestinal metaplasia reveals molecular
determinants of progression to gastric cancer. Cancer Cell 2018;33(1):
137–50.e5.
139. Raftopoulos SC, Kumarasinghe P, de Boer B, et al. Gastric intraepithelial
neoplasia in a Western population. Eur J Gastroenterol Hepatol 2012;
24(1):48–54.
140. Sung JK. Diagnosis and management of gastric dysplasia. Korean J
Intern Med 2016;31(2):201–9.
141. Yamada H, Ikegami M, Shimoda T, et al. Long-term follow-up study of
gastric adenoma/dysplasia. Endoscopy 2004;36(5):390–6.
142. Kokkola A, Haapiainen R, Lax´en F, et al. Risk of gastric carcinoma in
patients with mucosal dysplasia associated with atrophic gastritis: A
follow up study. J Clin Pathol 1996;49(12):979–84.
143. Fertitta AM, Comin U, Terruzzi V, et al. Clinical significance of gastric
dysplasia: A multicenter follow-up study. Gastrointestinal Endoscopic
Pathology Study Group. Endoscopy 1993;25(4):265–8.
144. Saraga EP, Gardiol D, Costa J. Gastric dysplasia. A histological follow-up
study. Am J Surg Pathol 1987;11(10):788–96.
145. Rugge M, Farinati F, Di Mario F, et al. Gastric epithelial dysplasia: A
prospective multicenter follow-up study from the Interdisciplinary
Group on Gastric Epithelial Dysplasia. Hum Pathol 1991;22(10):
1002–8.
146. Di Gregorio C, Morandi P, Fante R, et al. Gastric dysplasia. A follow-up
study. Am J Gastroenterol 1993;88(10):1714–9.
147. Lansdown M, Quirke P, Dixon MF, et al. High grade dysplasia of the
gastric mucosa: A marker for gastric carcinoma. Gut 1990;31(9):977–83.
148. Rugge M, Farinati F, Baffa R, et al. Gastric epithelial dysplasia in the
natural history of gastric cancer: A multicenter prospective follow-up
study. Interdisciplinary Group on Gastric Epithelial Dysplasia.
Gastroenterology 1994;107(5):1288–96.
149. Rugge M, Cassaro M, Di Mario F, et al. The long term outcome of gastric
non-invasive neoplasia. Gut 2003;52(8):1111–6.
150. de Vries AC, van Grieken NC, Looman CW, et al. Gastric cancer risk in
patients with premalignant gastric lesions: A nationwide cohort study in
the Netherlands. Gastroenterology 2008;134(4):945–52.
151. Raftopoulos SC, Segarajasingam DS, Burke V, et al. A cohort study of
missed and new cancers after esophagogastroduodenoscopy. Am J
Gastroenterol 2010;105(6):1292–7.
© 2025 by The American College of Gastroenterology
The American Journal of GASTROENTEROLOGY
STOMACH
Management of Gastric Premalignant Conditions
27
152. Coma del Corral MJ, Pardo-Mindan FJ, Razquin S, et al. Risk of cancer in
patients with gastric dysplasia. Follow-up study of 67 patients. Cancer
1990;65(9):2078–85.
153. Kolodziejczyk P, Yao T, Oya M, et al. Long-term follow-up study of
patients with gastric adenomas with malignant transformation. An
immunohistochemical and histochemical analysis. Cancer 1994;74(11):
2896–907.
154. Goo JJ, Choi CW, Kang DH, et al. Risk factors associated with diagnostic
discrepancy of gastric indefinite neoplasia: Who need en bloc resection?
Surg Endosc 2015;29(12):3761–7.
155. Sun J, Fang F, Ol´en O, et al. Normal gastrointestinal mucosa at biopsy
and subsequent cancer risk: Nationwide population-based, sibling-
controlled cohort study. BMC Cancer 2022;22(1):890.
156. Canakis A, Pani E, Saumoy M, et al. Decision model analyses of upper
endoscopy for gastric cancer screening and preneoplasia surveillance: A
systematic review. Therap Adv Gastroenterol 2020;13:
1756284820941662.
157. Thiruvengadam NR, Gupta S, Buller S, et al. The clinical impact and
cost-effectiveness of surveillance of incidentally detected gastric
intestinal metaplasia: A microsimulation analysis. Clin Gastroenterol
Hepatol 2024;22(1):51–61.
158. Yan Z, Zou L, Wang Q, et al. Preoperative H. pylori eradication therapy
facilitates precise delineation in early gastric cancer with current H.
pylori infection. Dig Dis. 2024;42(1):1–11.
159. Pimenta-Melo AR, Monteiro-Soares M, Libˆanio D, et al. Missing rate for
gastric cancer during upper gastrointestinal endoscopy: A systematic
review and meta-analysis. Eur J Gastroenterol Hepatol 2016;28:1041–9.
160. Zhao G, Xue M, Hu Y, et al. How commonly is the diagnosis of gastric
low grade dysplasia upgraded following endoscopic resection? A meta-
analysis. PLoS One 2015;10(7):e0132699.
161. Kim YI, Park JY, Kim BJ, et al. Risk of metachronous gastric neoplasm
occurrence during intermediate-term follow-up period after
endoscopic submucosal dissection for gastric dysplasia. Sci Rep
2020;10(1):6747.
162. Choe Y, Kim BW, Kim TH, et al. The optimal interval of surveillance
gastroscopy after endoscopic resection for gastric neoplasia: A
multicenter cohort study. Surg Endosc 2023;37(10):7556–62.
163. Abe S, Oda I, Suzuki H, et al. Long-term surveillance and treatment
outcomes of metachronous gastric cancer occurring after curative
endoscopic submucosal dissection. Endoscopy 2015;47(12):1113–8.
164. Ono H, Yao K, Fujishiro M, et al. Guidelines for endoscopic submucosal
dissection and endoscopic mucosal resection for early gastric cancer
(second edition). Dig Endosc 2021;33(1):4–20.
165. Kim YJ, Park JC, Kim JH, et al. Histologic diagnosis based on forceps
biopsy is not adequate for determining endoscopic treatment of gastric
adenomatous lesions. Endoscopy 2010;42(8):620–6.
166. Yang L, Ma XZ, Wang X, et al. Endoscopic resection of gastric low-grade
dysplasia with high risk factors is associated with decreased advanced
neoplasia: A single-center retrospective cohort study. Surg Endosc 2023;
37(6):4737–47.
167. Facciorusso A, Antonino M, Di Maso M, et al. Endoscopic submucosal
dissection vs endoscopic mucosal resection for early gastric cancer: A
meta-analysis. World J Gastrointest Endosc 2014;6(11):555–63.
168. Lian J, Chen S, Zhang Y, et al. A meta-analysis of endoscopic submucosal
dissection and EMR for early gastric cancer. Gastrointest Endosc 2012;
76(4):763–70.
169. Park YM, Cho E, Kang HY, et al. The effectiveness and safety of
endoscopic submucosal dissection compared with endoscopic mucosal
resection for early gastric cancer: A systematic review and metaanalysis.
Surg Endosc 2011;25(8):2666–77.
170. Zhang X, Ly EK, Nithyanand S, et al. Learning curve for endoscopic
submucosal dissection with an untutored, prevalence-based approach in
the United States. Clin Gastroenterol Hepatol 2020;18(3):580–8.e1.
171. Esaki M, Ihara E, Sumida Y, et al. Hybrid and conventional endoscopic
submucosal dissection for early gastric neoplasms: A multi-center
randomized controlled trial. Clin Gastroenterol Hepatol 2023;21(7):
1810–8.e8.
172. Simone A, Casadei A, De Vergori E, et al. Rescue endoscopy to identify
site of gastric dysplasia or carcinoma found at random biopsies. Dig
Liver Dis 2011;43(9):721–5.
173. IARC Monogr Eval Carcinog Risks Hum. Schistosomes, liver flukes and
Helicobacter pylori. IARC Working Group on the Evaluation of
Carcinogenic Risks to Humans. Lyon, 7–14 June 1994. 1994;61:1–241.
174. Cheng HC, Yang YJ, Yang HB, et al. Evolution of the Correa’s cascade
steps: A long-term endoscopic surveillance among non-ulcer dyspepsia
and gastric ulcer after H. pylori eradication. J Formos Med Assoc. 2023;
122(5):400–10.
175. Kobayashi M, Sato Y, Terai S. Endoscopic surveillance of gastric cancers
after Helicobacter pylori eradication. World J Gastroenterol. 2015;
21(37):10553–62.
176. Ford AC, Yuan Y, MoayyediP. Helicobacter pylori eradicationtherapy to
prevent gastric cancer: Systematic review and meta-analysis. Gut. 2020;
69(12):2113–21.
177. Lee YC, Chiang TH, Chou CK, et al. Association between Helicobacter
pylori eradication and gastric cancer incidence: A systematic review and
meta-analysis. Gastroenterology. 2016;150(5):1113–24.e5.
178. Chiang TH, Chang WJ, Chen SL, et al. Mass eradication of Helicobacter
pylori to reduce gastric cancer incidence and mortality: A long-term
cohort study on Matsu Islands. Gut. 2021;70(2):243–50.
179. Khan MY, Aslam A, Mihali AB, et al. Effectiveness of Helicobacter pylori
eradication in preventing metachronous gastric cancer and
preneoplastic lesions. A systematic review and meta-analysis. Eur J
Gastroenterol Hepatol. 2020;32(6):686–94.
180. Lemos FFB, de Castro CT, Calmon MS, et al. Effectiveness of
Helicobacter pylori eradication in the treatment of early-stage gastric
mucosa-associated lymphoid tissue lymphoma: An up-to-date meta-
analysis. World J Gastroenterol. 2023;29(14):2202–21.
181. Kumar S, Metz DC, Ellenberg S, et al. Risk factors and incidence of
gastric cancer after detection of Helicobacter pylori infection: A large
cohort study. Gastroenterology. 2020;158(3):527–36.e7.
182. Shah SC, Peek RM Jr. Chemoprevention against gastric cancer.
Gastrointest Endosc Clin N Am 2021;31(3):519–42.
183. Freedberg DE, Kim LS, Yang YX. The risks and benefits of long-term use
of proton pump inhibitors: Expert review and best practice advice from
the American Gastroenterological Association. Gastroenterology 2017;
152(4):706–15.
184. Howden CW, Chey WD, Shah SC. Re-evaluating the proposed
association between vonoprazan and gastric cancer following
eradication of H. pylori infection. Clin Gastroenterol Hepatol. 2025;
23(1):182–3.
185. Miceli E, Vanoli A, Lenti MV, et al. Natural history of autoimmune
atrophic gastritis: A prospective, single centre, long-term experience.
Aliment Pharmacol Ther 2019;50(11–12):1172–80.
186. Rugge M, Bricca L, Guzzinati S, et al. Autoimmune gastritis: Long-term
natural history in naïve Helicobacter pylori-negative patients. Gut 2023;
72(1):30–8.
187. Dilaghi E, Dottori L, Pivetta G, et al. Incidence and predictors of gastric
neoplastic lesions in corpus-restricted atrophic gastritis: A single-center
cohort study. Am J Gastroenterol 2023;118(12):2157–65.
188. Miceli E, Lenti MV, Gentile A, et al. Long-term natural history of
autoimmune gastritis: Results from a prospective monocentric series.
Am J Gastroenterol 2024;119(5):837–45.
189. Bizzaro N, Antico A, Villalta D. Autoimmunity and gastric cancer. Int J
Mol Sci 2018;19(2):377.
190. StricklandRG,MackayIR. Areappraisalofthe natureand significanceof
chronic atrophic gastritis. Am J Dig Dis 1973;18(5):426–40.
191. RuggeM,FassanM,PizziM,etal.Autoimmunegastritis:Histologyphenotype
and OLGA staging. Aliment Pharmacol Ther 2012;35(12):1460–6.
192. Vannella L, Lahner E, Osborn J, et al. Systematic review: Gastric cancer
incidence in pernicious anaemia. Aliment Pharmacol Ther 2013;37(4):
375–82.
193. Rugge M, Fassan M, Pizzi M, et al. Letter: Gastric cancer and pernicious
anaemia: Often Helicobacter pylori in disguise.AlimentPharmacol Ther
2013;37(7):764–5.
194. Lahner E, Capasso M, Carabotti M, et al. Incidence of cancer (other than
gastric cancer) in pernicious anaemia: A systematic review with meta-
analysis. Dig Liver Dis 2018;50(8):780–6.
195. Lahner E, Zagari RM, Zullo A, et al. Chronic atrophic gastritis: Natural
history, diagnosis and therapeutic management. A position paper by the
Italian Society of Hospital Gastroenterologists and Digestive
Endoscopists [AIGO], the Italian Society of Digestive Endoscopy
[SIED], the Italian Society of Gastroenterology [SIGE], and the Italian
Society of Internal Medicine [SIMI]. Dig Liver Dis 2019;51(12):1621–32.
196. Murphy G, Dawsey SM, Engels EA, et al. Cancer risk after pernicious
anemia in the US elderly population. Clin Gastroenterol Hepatol 2015;
13:2282–9.e1–4.
The American Journal of GASTROENTEROLOGY
VOLUME 00 | MONTH 2025
www.amjgastro.com
STOMACH
Morgan et al
28
197. Park JY, Cornish TC, Lam-Himlin D, et al. Gastric lesions in patients
with autoimmune metaplastic atrophic gastritis (AMAG) in a tertiary
care setting. Am J Surg Pathol 2010;34(11):1591–8.
198. Gonzalez A, Latorre G, Paredes L, et al. Mucocutaneous manifestations
in autoimmune gastritis: A prospective case-control study. Am J
Gastroenterol 2021;116(12):2374–84.
199. Cheesman AR, Greenwald DA, Shah SC. Current management of
benign epithelial gastric polyps. Curr Treat Options Gastroenterol 2017;
15(4):676–90.
200. Corral JE, Keihanian T, Diaz LI, et al. Management patterns of gastric
polyps in the United States. Frontline Gastroenterol 2019;10(1):16–23.
201. Carmack SW, Genta RM, Schuler CM, et al. The current spectrum of
gastric polyps: A 1-year national study of over 120,000 patients. Am J
Gastroenterol 2009;104(6):1524–32.
202. Abraham SC, Park SJ, Mugartegui L, et al. Sporadic fundic gland polyps
with epithelial dysplasia: Evidence for preferential targeting for
mutations in the adenomatous polyposis coli gene. Am J Pathol 2002;
161(5):1735–42.
203. Jalving M, Koornstra JJ, G¨otz JM, et al. High-grade dysplasia in sporadic
fundic gland polyps: A case report and review of the literature. Eur J
Gastroenterol Hepatol 2003;15(11):1229–33.
204. Garrean S, Hering J, Saied A, et al. Gastric adenocarcinoma arising from
fundic gland polyps in a patient with familial adenomatous polyposis
syndrome. Am Surg 2008;74(1):79–83.
205. Wood LD, Salaria SN, Cruise MW, et al. Upper GI tract lesions in
familial adenomatous polyposis (FAP): Enrichment of pyloric gland
adenomas and other gastric and duodenal neoplasms. Am J Surg Pathol
2014;38(3):389–93.
206. Zhang H, Nie X, Song Z, et al. Hyperplastic polyps arising in autoimmune
metaplastic atrophic gastritis patients: Is this a distinct clinicopathological
entity? Scand J Gastroenterol 2018;53(10–11):1186–93.
207. Abraham SC, Singh VK, Yardley JH, et al. Hyperplastic polyps of the
stomach: Associations with histologic patterns of gastritis and gastric
atrophy. Am J Surg Pathol 2001;25(4):500–7.
208. Massironi S, Elvevi A, Gallo C, et al. Exploring the spectrum of
incidental gastric polyps in autoimmune gastritis. Dig Liver Dis
2023;55(9):1201–7.
209. Ahn JY, Son DH, Choi KD, et al. Neoplasms arising in large gastric
hyperplastic polyps: Endoscopic and pathologic features. Gastrointest
Endosc 2014;80(6):1005–13.e2.
210. Ginsberg GG, Al-Kawas FH, Fleischer DE, et al. Gastric polyps:
Relationship of size and histology to cancer risk. Am J Gastroenterol
1996;91(4):714–7.
211. Digestive System Tumours. International Agency for Research on
Cancer: Lyon, France, 2019.
212. Abraham SC, Montgomery EA, Singh VK, et al. Gastric adenomas:
Intestinal-type and gastric-type adenomas differ in the risk of
adenocarcinoma and presence of background mucosal pathology. Am J
Surg Pathol 2002;26(10):1276–85.
213. Chen ZM, Scudiere JR, Abraham SC, et al. Pyloric gland adenoma: An
entity distinct from gastric foveolar type adenoma. Am J Surg Pathol
2009;33(2):186–93.
214. Vieth M, Kushima R, Borchard F, et al. Pyloric gland adenoma: A
clinico-pathological analysis of 90 cases. Virchows Arch 2003;442(4):
317–21.
215. Dinis-Ribeiro M, Areia M, de Vries AC, et al. Management of
precancerous conditions and lesions in the stomach (MAPS): Guideline
from the European Society of Gastrointestinal Endoscopy (ESGE),
European Helicobacter Study Group (EHSG), European Society of
Pathology(ESP),and the Sociedade Portuguesa de Endoscopia Digestiva
(SPED). Virchows Arch. 2012;460(1):19–46.
216. Pimentel-Nunes P, Libanio D, Marcos-Pinto R, et al. Management of
epithelial precancerous conditions and lesions in the stomach (MAPS
II): European Society of Gastrointestinal Endoscopy (ESGE), European
Helicobacter and Microbiota Study Group (EHMSG), European Society
of Pathology (ESP), and Sociedade Portuguesa de Endoscopia Digestiva
(SPED) guideline update 2019. Endoscopy 2019;51(4):365–88.
217. AbrahamSC,ParkSJ,LeeJH,etal.Geneticalterationsingastricadenomasof
intestinal and foveolar phenotypes. Mod Pathol 2003;16(8):786–95.
218. Lax´en F, Sipponen P, Iham¨aki T, et al. Gastric polyps; their
morphological and endoscopical characteristics and relation to gastric
carcinoma. Acta Pathol Microbiol Immunol Scand A 1982;90(3):221–8.
219. Hackeng WM, Montgomery EA, Giardiello FM, et al. Morphology and
genetics of pyloric gland adenomas in familial adenomatous polyposis.
Histopathology 2017;70(4):549–57.
220. Ramage JK, Ahmed A, Ardill J, et al. Guidelines for the management of
gastroenteropancreatic neuroendocrine (including carcinoid) tumours
(NETs). Gut 2012;61(1):6–32.
221. Muehldorfer SM, Stolte M, Martus P, et al. Diagnostic accuracy of
forceps biopsy versus polypectomy for gastric polyps: A prospective
multicentre study. Gut 2002;50(4):465–70.
222. Kamal F, Khan MA, Lee-Smith W, et al. Cold snare versus cold forceps
polypectomy for endoscopic resection of diminutive polyps: Meta-
analysis of randomized controlled trials. Gastrointest Endosc. 2023;
98(1):7–18.e4.
223. Lee CK, Shim JJ, Jang JY. Cold snare polypectomy vs cold forceps
polypectomy using double-biopsy technique for removal of diminutive
colorectal polyps: A prospective randomized study. Am J Gastroenterol.
2013;108(10):1593–600.
224. Hizawa K, Fuchigami T, Iida M, et al. Possible neoplastic transformation
within gastric hyperplastic polyp. Application of endoscopic
polypectomy. Surg Endosc 1995;9(6):714–8.
225. Zea-Iriarte WL, Sekine I, Itsuno M, et al. Carcinoma in gastric
hyperplastic polyps. A phenotypic study. Dig Dis Sci 1996;41(2):377–86.
226. ASGE Standards of Practice Committee: Evans JA, Chandrasekhara V,
et al. The role of endoscopy in the management of premalignant and
malignant conditions of the stomach. Gastrointest Endosc 2015;82:1–8.
227. Park JM, Cho S, Shin GY, et al. Gastric cancer incidence and mortality
after endoscopic resection of gastric adenoma: A nationwide cohort
study. Am J Gastroenterol 2023;118(12):2166–72.
228. Mohammed A, Garg R, Trakroo S, et al. Long term outcomes of sporadic
large fundic gland polyps: A single-center experience. Scand J
Gastroenterol 2021;56(12):1391–5.
229. Seifert E, Gail K, Weism¨uller J. Gastric polypectomy. Long-term results
(survey of 23 centres in Germany). Endoscopy 1983;15(1):8–11.
230. Wang CP, McKinley M, Vu A, et al. Demographic comparison of the
burden of endoscopically screenable cancers in the United States. Gastro
Hep Adv. 2024;3(4):482–490.
231. Leja M. Where are we with gastric cancer screening in Europe in 2024?
Gut. 2024;73(12):2074–2082.
232. Yan L, Chen F, Tao T, et al. Effect of Helicobacter pylori eradication on
gastric cancer prevention: updated report from a randomized controlled
trial with 26.5 years of follow-up. Gastroenterology. 2022;163(1):
154–162.
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