Gastric cancer is the fifth most common malignancy globally, with marked geographic variation — highest incidence in East Asia, Eastern Europe, and South America. Helicobacter pylori infection remains the dominant risk factor. Molecular classification (TCGA: EBV+, MSI, GS, CIN subtypes) has revealed actionable therapeutic vulnerabilities.
Treatment advances include trastuzumab for HER2+ disease, nivolumab-based immunotherapy for PD-L1 CPS ≥5, and the emerging Claudin 18.2-targeted approach (zolbetuximab) for CLDN18.2-positive tumors. FGFR2b amplification and MSI-H status represent additional biomarker-guided therapeutic opportunities.
Research Use Only (RUO)
Not intended for diagnostic or therapeutic procedures.
Fig. 1 Major pathogenic pathways in Gastric Cancer
HER2 (ERBB2) — HER2 overexpression/amplification occurs in 12-20% of gastric/GEJ adenocarcinoma. Anti-HER2 antibodies support IHC scoring (modified gastric criteria differ from breast cancer), trastuzumab binding competition studies, and T-DXd ADC research extending HER2-targeted therapy to HER2-low gastric cancer.
Claudin 18.2 (CLDN18.2) — Claudin 18.2 is a tight junction protein expressed in approximately 60% of gastric cancers, normally confined to differentiated gastric mucosa. Anti-Claudin 18.2 antibodies enable IHC expression scoring for zolbetuximab eligibility, CAR-T target validation, and tight junction biology studies in gastrointestinal tumors.
PD-L1 (CD274) — PD-L1 combined positive score (CPS ≥5) selects gastric cancer patients for nivolumab/pembrolizumab immunotherapy. Anti-PD-L1 antibodies support CPS validation research, tumor microenvironment immune profiling, and combination immunotherapy studies in gastric/GEJ adenocarcinoma.
FGFR2b — FGFR2b amplification occurs in 5-10% of gastric cancers and represents a targetable receptor tyrosine kinase alteration. Anti-FGFR2 antibodies and recombinant FGFR2b proteins support amplification screening, ligand-binding studies, and bemarituzumab (anti-FGFR2b) mechanism-of-action research.
1. Bang Y-J, Van Cutsem E, Feyereislova A, et al. Trastuzumab in combination with chemotherapy in HER2-positive gastric cancer. Lancet. 2010;376(9742):687-697. DOI
2. Janjigian YY, Shitara K, Moehler M, et al. First-line nivolumab plus chemotherapy for advanced gastric cancer. N Engl J Med. 2021;385(25):2372-2381. DOI
3. Shitara K, Lordick F, Bang Y-J, et al. Zolbetuximab plus mFOLFOX6 in CLDN18.2-positive gastric cancer. Nat Med. 2023;29(8):2133-2141. DOI
4. The Cancer Genome Atlas Research Network. Comprehensive molecular characterization of gastric adenocarcinoma. Nature. 2014;513(7517):202-209. DOI
5. Wainberg ZA, Enzinger PC, Kang Y-K, et al. Bemarituzumab in FGFR2b-selected gastric cancer. Lancet Oncol. 2023;24(11):1233-1246. DOI
Human
ELISA, Bioactivity: FCM, Functional assay, Research in vivo
Human
Monoclonal
IgG1-kappa
Human
ELISA, Bioactivity: FACS, Functional assay, Research in vivo
Human
Monoclonal
Fab-G1-kappa-[Fc-G1]
Human
ELISA, Bioactivity: FCM, Functional assay, Research in vivo
Human
Monoclonal
IgG1-kappa
Mouse
in vivo PD-L1 blockade, in vitro PD-L1 blockade, IF, IHC-F, FCM, WB
Rat
Monoclonal
IgG2b
10F.9G2
Human
ELISA, Bioactivity: FCM, Functional assay, Research in vivo
Chimeric
Monoclonal
IgG1-kappa
Human
ELISA, WB, FCM
Human
Monoclonal
VHH-hFc
SAA2018
Human
ELISA, FCM, WB
Human
Monoclonal
IgG1, kappa
SAA2012
Human
FCM
Human
Monoclonal
IgG1, kappa
MN14
Human
FCM
Human
Monoclonal
IgG1, kappa
RG7813
Human
FCM
Human
Monoclonal
IgG1, kappa
4D5V8