Evidence map›Paper›PMID 42482033›Full record

ArticleMolecular cancer2026

Spatial proteomics reveals four-stage molecular evolution in cancer immunotherapy-related gastritis.

Lei Shi, Zhongqiao Lin, Huishan Zhang, Yuping Lu, Zequn Sun, Bin Lan, Huang Xia, Shuimei Luo, Ling Chen, Zhida Wu and 5 more

Abstract read
In one paragraph

Article in Molecular cancer, 2026. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Not yet cited in PubMed.

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1 · What the graph read from it

What it found

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2 · The registry

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3 · Its place in the literature

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4 · The record

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5 · Who and what money

Authors and funding

15 authors.

Lei Shi *Department of Medical Oncology, Clinical Oncology School of Fujian Medical University, Fujian Cancer Hospital, Fuzhou, 350014, Fujian Province, China.
Zhongqiao Lin *NHC Key Laboratory of Cancer and Metabolism (Fujian Cancer Hospital), Fujian Key Laboratory of Translational Cancer Medicine, Fuzhou, 350014, Fujian Province, China.
Huishan Zhang *NHC Key Laboratory of Cancer and Metabolism (Fujian Cancer Hospital), Fujian Key Laboratory of Translational Cancer Medicine, Fuzhou, 350014, Fujian Province, China.
Yuping LuDepartment of Medical Oncology, Clinical Oncology School of Fujian Medical University, Fujian Cancer Hospital, Fuzhou, 350014, Fujian Province, China.
Zequn SunDepartment of Medical Oncology, Clinical Oncology School of Fujian Medical University, Fujian Cancer Hospital, Fuzhou, 350014, Fujian Province, China.
Bin LanNHC Key Laboratory of Cancer and Metabolism (Fujian Cancer Hospital), Fujian Key Laboratory of Translational Cancer Medicine, Fuzhou, 350014, Fujian Province, China.
Huang XiaNHC Key Laboratory of Cancer and Metabolism (Fujian Cancer Hospital), Fujian Key Laboratory of Translational Cancer Medicine, Fuzhou, 350014, Fujian Province, China.
Shuimei LuoNHC Key Laboratory of Cancer and Metabolism (Fujian Cancer Hospital), Fujian Key Laboratory of Translational Cancer Medicine, Fuzhou, 350014, Fujian Province, China.
Ling ChenDepartment of Medical Oncology, Clinical Oncology School of Fujian Medical University, Fujian Cancer Hospital, Fuzhou, 350014, Fujian Province, China.
Zhida WuDepartment of Pathology, Clinical Oncology School of Fujian Medical University, Fujian Cancer Hospital, Fuzhou, 350014, Fujian Province, China.
Yuyang HuangDepartment of Chemistry, Fuzhou University, Fuzhou, 350014, Fujian Province, China.
Mengru QuanDepartment of Chemistry, Fuzhou University, Fuzhou, 350014, Fujian Province, China.
Xuefeng WangNHC Key Laboratory of Cancer and Metabolism (Fujian Cancer Hospital), Fujian Key Laboratory of Translational Cancer Medicine, Fuzhou, 350014, Fujian Province, China. wangxuefeng2019@foxmail.com.
Jing LinDepartment of Medical Oncology, Clinical Oncology School of Fujian Medical University, Fujian Cancer Hospital, Fuzhou, 350014, Fujian Province, China. 423559148@fjmu.edu.cn.
Yu ChenDepartment of Medical Oncology, Clinical Oncology School of Fujian Medical University, Fujian Cancer Hospital, Fuzhou, 350014, Fujian Province, China. chenyu1980@fjmu.edu.cn.

Funding

Joint Funds for the innovation of science and Technology,Fujian province 2025Y9695the National Natural Science Foundation of China 82350126the Special Research Funds for Local Science and Technology Development Guided by Central Government 2023L3020
6 · The paper itself

Abstract

backgroundImmune checkpoint inhibitors (ICIs) have transformed cancer treatment, yet immune-related adverse events (irAEs) including immunotherapy-related gastritis (IRAEG) pose significant clinical challenges-often necessitating treatment interruption that may compromise antitumor efficacy. IRAEG presents with atypical symptoms, lacks specific biomarkers, and shows histopathological overlap with other forms of gastritis, complicating diagnosis and management. Despite increasing clinical recognition, a systematic understanding of spatial molecular alterations across the full disease course remains limited. Here, we used spatial proteomics to map the molecular landscape of IRAEG during disease progression and to define stage-specific patterns of molecular evolution relevant to cancer immunotherapy management.

methodsWe analyzed tissue samples from seven patients, including four non-immunotherapy-related gastritis controls and three cancer patients who developed IRAEG following ICI therapy for solid tumors, sampled longitudinally across four disease stages: baseline (G1), acute severe inflammation (G2), early recovery (G3), and complete recovery (G4). Using laser capture microdissection coupled with data-independent acquisition mass spectrometry, we profiled 177 spatially resolved gastric tissue regions. Multiplex immunohistochemistry and immunofluorescence characterized features of the immune microenvironment, while Gene Ontology, KEGG pathway analysis, Gene Set Variation Analysis, and xCell inference enabled functional, metabolic, and immune profiling. Key immune and NET-related findings were further validated by multiplex immunofluorescence in an independent, expanded cohort of IRAEG and non-immunotherapy-related gastritis samples.

resultsIRAEG was characterized by widespread HLA molecule activation and enhanced antigen processing, resembling the immune phenotype observed in organ transplant rejection. The acute G2 stage exhibited excessive neutrophil extracellular trap formation, profound metabolic suppression, and collapse of immune homeostasis-features that may inform early intervention strategies to preserve ICI treatment continuity. During early recovery (G3), inflammatory injury transitioned toward repair, marked by activation of fatty acid metabolism and PPAR signaling. Notably, even at complete clinical recovery (G4), more than 1,000 proteins remained differentially expressed, reflecting sustained enhancement of metabolic and immune functions and establishing a distinct molecular "memory" state with implications for ICI rechallenge decisions.

conclusionsThese findings define four molecularly distinct stages of IRAEG progression and recovery. The stage-specific signatures identified here serve as candidate biomarkers for diagnosis, disease staging, and therapeutic response assessment, and may guide clinical decisions regarding irAE management, treatment modification, and safe ICI rechallenge to support continued antitumor therapy.

Indexed as

GastritisImmune Checkpoint InhibitorsImmunotherapyNeoplasmsProteomicsAgedBiomarkers, TumorDisease ProgressionFemaleHumansMaleMiddle AgedBiomarkers, TumorImmune Checkpoint InhibitorsCancer immunotherapyImmune-related adverse eventsImmunotherapy-related gastritisMolecular stagingSpatial proteomics

Identifiers

PMID42482033
PMCPMC13560448

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