ABSTRACT The gut microbiota plays an important role in the occurrence and development of metabolic dysfunction-associated steatotic liver disease (MASLD), but the specific molecular mechanisms involved have not been fully elucidated. In this study, human cohort studies were performed to identify that the relative abundance of Bacteroides cellulosilyticus (B. cellulosilyticus) was significantly decreased in patients with MASLD. Through the integration of metagenomic and metabolomic analyses, it was confirmed that B. cellulosilyticus and its metabolite 2-hydroxyphenylacetic acid (2HPAA) are key factors regulating the occurrence and development of MASLD. Single-cell sequencing and lipidomic analyses revealed that 2HPAA can enter the liver through the enterohepatic circulation to exert regulatory effects. Specifically, 2HPAA inhibits the peroxisome proliferator-activated receptor γ (PPARγ) signaling pathway, thereby suppressing the expression of the fatty acid transporter CD36. Meanwhile, 2HPAA regulates lipid metabolism in hepatocytes by significantly enhancing palmitate conversion efficiency and inhibiting CD36 palmitoylation. This dual regulatory effect on CD36 expression and palmitoylation can reduce lipid accumulation in hepatocytes and ultimately alleviate MASLD progression. These findings reveal the mechanism by which B. cellulosilyticus and 2HPAA alleviate MASLD by targeting the PPARγ-CD36 pathway. This work provides a new perspective for the study of gut microbiota-host interactions in regulating liver diseases.
Kaiwei Chen, Zizhen Yang, Jixing Peng et al.· Gut microbes· 0 citations
Metabolic dysfunction-associated steatotic liver disease (MASLD) represents a prevalent and severe global health burden closely associated with gut dysbiosis and systemic metabolic disorders. Pectic oligosaccharides (POS) are functional prebiotics with metabolic regulatory potential, yet their exact efficacy and microecological mechanisms against MASLD via the gut-liver axis are still unclear. In this study, multi-omics profiling of HFD-induced MASLD mice revealed that POS alleviates hepatic steatosis and improves lipid metabolism by enriching a core microbiota dominated by Phocaeicola dorei and reactivating its de novo vitamin B7 biosynthesis. Importantly, leveraging serum metabolomics from an external human MASLD cohort, we confirmed a severe systemic deficiency of VB7 and its precursors that strongly correlated with fasting glucose, insulin resistance, and hepatic injury. In summary, this study identified POS as an effective intervention to alleviate MASLD by restoring intestinal endogenous VB7 supply, providing a strong rationale for developing POS as a therapeutic prebiotic.
Zizhen Yang, Yujia Fu, Shuhan Liu et al.· Food & Function· 0 citations
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