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Sicheng Liu

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Open access Jul 2026

Causal immune-inflammation mapping of the GERD-Barrett-adenocarcinoma cascade identifies FGF19-HLA-DR⁺ T-cell axis driving esophagogastric junction metaplasia.

BACKGROUND Gastroesophageal reflux disease (GERD), Barrett's esophagus (BE), and esophageal adenocarcinoma (EAC) form a recognized pathological continuum, but the causal immune and inflammatory processes driving progression remain incompletely defined. METHODS Summary-level genome-wide association study (GWAS) data were analyzed for 91 circulating inflammatory proteins (n = 14,824), 731 immune cell phenotypes (n = 3,757), and three esophageal diseases (GERD, BE, and EAC). Bidirectional and two-step Mendelian randomization (MR) were used to infer causal effects and mediation, with Cochran's Q, MR-Egger, and MR-PRESSO applied to assess heterogeneity and pleiotropy. Causal interaction networks were reconstructed to map immune- and inflammation-dominant regulatory patterns across disease stages, and MR-prioritized signals were experimentally validated in esophagogastric junction (EGJ) organoids and mouse models. RESULTS MR supported a causal GERD-BE-EAC sequence, with BE mediating 31.95% of the total GERD-to-EAC effect. In total, 139 immune cell traits and 29 inflammatory proteins showed causal links to disease risk. Mediation analyses highlighted M-CSF1 and HLA-DR+CD4 + T cells as central hubs. Guided by the MR-prioritized FGF19-HLA-DR + T-cell axis, experimental studies demonstrated that FGF19 promotes EGJ glandular conversion and increases infiltration of HLA-DR+ CD4+/CD8 + T cells, validated in EGJ organoids and mouse models. CONCLUSIONS This integrated genetic and experimental framework delineates a bidirectional immune-inflammation regulatory network underlying progression from GERD to BE and EAC. FGF19 emerges as a candidate cytokine driving EGJ glandular remodeling through HLA-DR+ CD4+/CD8 + T-cell associated immune activation, providing candidate molecular targets for early prevention and intervention.

Yixin Liu, Zhipeng Gong, Yuwen Tan et al. · 0 citations
Open access Jul 2026

Targeting HASPIN-mediated H3T3 phosphorylation disrupts an epigenetic-kinesin axis to suppress colorectal cancer mitotic progression.

Chemoresistance remains a major barrier in colorectal cancer (CRC) therapy. Through epigenetic compound screening in patient-derived organoids (PDOs), we identified CX6258.HCl as a potent growth inhibitor. Treatment with CX6258.HCl significantly inhibited cell mitosis and induced apoptosis in CRC cell lines. Mechanistically, CX6258.HCl binds the D687 residue within HASPIN's kinase domain, suppressing H3T3 phosphorylation (H3T3ph). This triggers an epigenetic cascade: loss of H3T3ph upregulates demethylase KDM5B pre-mRNA, depleting H3K4me3 at promoters of Kinesin family member (KIFC1/KIF10/KIF14). Consequently, microtubule dynamics are disrupted, leading to mitotic arrest. Target specificity was validated genetically via HASPIN-D687A mutation. In vivo, CX6258.HCl suppressed CRC xenograft growth and further enhanced 5-FU-mediated tumor suppression without obvious histological injury in major organs. Clinically, elevated H3T3ph levels in human CRC tissues were associated with Ki67-positive proliferative tumor regions, suggesting that H3T3ph may represent a proliferation-associated marker in CRC. Together, our findings identify the HASPIN/H3T3ph-KDM5B-H3K4me3-KIF axis as a targetable antimitotic pathway and support therapeutic inhibition of HASPIN/H3T3ph as a potential strategy for CRC.

Tong Wu, Yaguang Zhang, Sicheng Liu et al. · 0 citations

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