Background Chronic atrophic gastritis (CAG) is a precancerous gastric lesion characterized by persistent inflammatory injury, glandular atrophy, and impairment of gastric mucosal barrier-associated integrity. Huangjin Shuangshen Decoction (HJSS) has shown therapeutic potential in gastritis-related disorders, but its effects on CAG and the underlying mechanism remain unclear. This study investigated whether HJSS alleviates CAG by modulating inflammation-associated barrier dysfunction. Methods CAG was induced in mice by MNNG combined with ranitidine and irregular feeding, followed by treatment with different doses of HJSS, with folic acid as a positive control. Histopathology, gastric function indices, inflammatory mediators, apoptosis-related markers, and barrier-associated molecules were assessed in vivo. MNNG-injured GES-1 cells treated with HJSS-medicated serum were used for in vitro validation. Transcriptomic analysis, network pharmacology, and pharmacological inhibition were integrated to explore the underlying mechanisms. Results HJSS alleviated gastric mucosal atrophy and histopathological injury, improved gastric functional impairment, reduced inflammatory burden, and attenuated apoptosis-associated epithelial injury in experimental CAG. HJSS also promoted the recovery of gastric mucosal barrier-associated molecules, including CFTR, ZO-1, MUC5AC, Occludin, and Claudin-1. Integrated transcriptomic and network pharmacology analyses highlighted an inflammation–barrier framework involving TNF-related signaling and CFTR-associated regulation. In vitro, HJSS mitigated MNNG-induced epithelial injury, whereas CFTR inhibition attenuated the HJSS-associated restoration of CFTR and ZO-1. HJSS was further associated with suppression of TNF/NF-κB signaling and reduced p65 nuclear translocation. Conclusion HJSS alleviates MNNG-induced CAG by attenuating inflammatory injury and promoting the recovery of gastric mucosal barrier-associated molecular features. Its protective effects are associated with suppression of TNF/NF-κB signaling and involvement of CFTR-associated regulation, supporting an inflammation–barrier mechanism underlying the action of HJSS in CAG.
Shuo Zhang, Shuya Zhang, Mengyi Wang et al.· Frontiers in Immunology· 0 citations
Background Hepatocellular carcinoma (HCC) remains a leading cause of cancer-related mortality worldwide, with a poor survival rate despite advances in therapy. Metabolic reprogramming, particularly involving lactate transport, plays a critical role in HCC progression. Monocarboxylate transporter 4 (MCT4) is a key lactate exporter often overexpressed in cancers, yet its precise role in HCC pathogenesis and immune modulation remains incompletely defined. Methods We integrated bioinformatic analyses of multiple datasets (TCGA-LIHC, GSE46408, GSE36411) with experimental validation in HCC cell lines (Huh7, MHCC97-H) and a murine xenograft model. Functional assays including wound healing, Transwell invasion, Western blot, and flow cytometry were employed. Immune cell infiltration and polarization were analyzed via CIBERSORT and single-cell RNA sequencing data (GSE282701). Results MCT4 was identified as a prognostic hub gene among lactate metabolism-related genes (LMRGs) and was significantly upregulated in HCC tissues, correlating with advanced tumor stage and poor survival. Gene Set Enrichment Analysis (GSEA) revealed a strong association between MCT4 expression and matrix metalloproteinase (MMP) pathways. In vitro, MCT4 knockdown downregulated MMP1, MMP2, and MMP9 expression and suppressed HCC cell migration and invasion. Furthermore, high MCT4 expression was linked to an immunosuppressive tumor microenvironment characterized by M2 macrophage polarization. In vivo, MCT4 knockdown inhibited tumor growth and reduced infiltration of CD206+ M2 macrophages. Conclusions Our findings demonstrate that MCT4 drives HCC progression through two complementary mechanisms: enhancing MMP-mediated invasion and metastasis, and promoting immunosuppressive M2 macrophage polarization. These results nominate MCT4 as a promising therapeutic target for restoring antitumor immunity and inhibiting metastasis in HCC.
Kaiyuan Zhang, Xiaochen Ni, Chuhang Wang et al.· Frontiers in Immunology· 0 citations