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Liang Zhu

Publications and source records attributed to Liang Zhu.

2 recordsLinked to original sources

HDGF induces inflammatory cancer-associated fibroblast formation through ENO1-mediated glycolytic reprogramming in esophageal squamous-cell carcinoma.

Inflammatory cancer-associated fibroblasts (iCAFs) are a highly plastic stromal population that critically shape tumor progression, immunosuppression, and therapeutic response in esophageal squamous-cell carcinoma (ESCC). Epithelial-intrinsic programs are increasingly recognized as key determinants of fibroblast reprogramming within the tumor microenvironment, yet the underlying mechanisms remain incompletely understood. Here, we identified hepatoma-derived growth factor (HDGF) as a pivotal epithelial-intrinsic regulator that drives iCAF formation in ESCC. Mechanistically, nuclear HDGF functioned as a transcriptional activator by directly binding the ENO1 promoter, thereby upregulating the expression of the glycolytic enzyme enolase 1, enhancing aerobic glycolysis, and promoting lactate secretion from tumor cells. Tumor-derived lactate was subsequently taken up by CAFs and induced histone H4 lysine 12 lactylation (H4K12la), which epigenetically activated NF-κB signaling and promoted iCAF formation. Functionally, HDGF-induced iCAFs promoted tumor progression through activation of the IL-6/JAK1/STAT3 axis and established an immunosuppressive microenvironment characterized by increased recruitment of regulatory T cells and reduced infiltration of CD8+ T cells, thereby facilitating immune evasion. Therapeutically, blockade of ENO1 effectively disrupted the glycolysis-lactylation cascade, markedly suppressing tumor growth and iCAF formation in vivo. Moreover, ENO1 inhibition reprogrammed the immunosuppressive tumor microenvironment and significantly enhanced the efficacy of anti-PD-1 therapy. Collectively, our findings reveal an HDGF/ENO1/H4K12la/iCAF axis that links tumor metabolic reprogramming, stromal inflammatory activation, and immunosuppression in ESCC, identifying this axis as a promising therapeutic target for overcoming immunotherapy resistance.

Phosphopyruvate Hydratase

Insights into iron-enhanced denitrification coupled with antibiotic resistant genes control in biochar-based biofiltration systems.

In biofiltration (BF) systems, biochar can enhance pollutant removal by promoting biofilm formation. Its abundant pore structure can also sequester antibiotics away from microbial cells, thereby reducing its bioavailability and accumulation of antibiotic resistance genes (ARGs). However, dense biofilms favor horizontal ARG transfer, especially among denitrifying bacteria, which are prone to stress under low influent C/N conditions. In this study, a strategy combining iron minerals was proposed to alleviate the ARG accumulation in BF systems. Compared with magnetite, goethite and siderite released Fe2+ through microbial dissimilatory iron reduction and chemical dissolution respectively, thereby driving iron‑autotrophic denitrification and enhancing the activity of electron‑transfer mediators (cytochrome c and Fe-S proteins). As a result, the level of nitrosative stress was reduced with significant downregulation of related genes (hmp, hcp, norR, and etc.), which was a driving force for conjugative transfer of ARGs. Specifically, the excessive accumulation of tryptophan and shortage of methionine were thus alleviated, which contributed to the regulation of global repressor gene expression and the mitigation of ARG conjugative transfer. With the combination of goethite or siderite in BF systems, the abundance of resistance genome in biofilm exhibited a reduction of 52.68 ± 3.80% and 41.26 ± 4.20%, respectively, which could effectively reduce the environment-ecological risk of antibiotic and ARGs.

Denitrification