Lipotoxic hepatocyte-derived UBQLN1-enriched small extracellular vesicles activate hepatic stellate cells to promote hepatic fibrosis

肝星状细胞 脂肪性肝炎 基因敲除 肝纤维化 细胞生物学 肝细胞 化学 生物 纤维化 癌症研究 下调和上调 脂肪肝 氧化应激 转录组 分泌物 肝再生 脂毒性 微泡 泛素
作者
Fuji Yang,Yifei Chen,Yanjin Wang,Guojun Zheng,Fatma A. Abouelnazar,Lin Fan,Yanan Wang,Yongmin Yan
出处
期刊: [Figshare (United Kingdom)]
标识
DOI:10.6084/m9.figshare.31566537.v1
摘要

Metabolic dysfunction-associated steatohepatitis (MASH) serves as a primary contributor to liver fibrosis, cirrhosis, and hepatocellular carcinoma, yet specific diagnostic markers and therapeutic targets remain unavailable. This study elucidates the molecular mechanism by which UBQLN1 (ubiquilin 1) promotes MASH-related liver fibrosis by regulating small extracellular vesicles (sEVs) secretion and the functionality of the lysosome-mitochondria axis, as well as its clinical significance. Analysis of a multicenter cohort (n = 150) demonstrated significantly elevated UBQLN1 levels in both serum and serum-derived sEV from MASH patients, exhibiting diagnostic accuracies of 0.89 and 0.95, respectively. Furthermore, increased UBQLN1 was observed in mouse models of MASH, hiPSCs-derived human liver organoids, and oleic acid and palmitic acid injured hepatocytes (lipotoxic hepatocytes). Mechanistically, lipotoxic stress induces O-GlcNAcylation at the T277 site of UBQLN1 via OGT (O-GlcNAc transferase), which competitively inhibits its phosphorylation, consequently reducing ubiquitin-mediated degradation. Hepatocyte UBQLN1 facilitates the secretion of sEVs by regulating LAMP1-mediated fusion of multivesicular bodies (MVBs) with lysosomes. Subsequently, sEVs containing UBQLN1 regulate the activation of hepatic stellate cells by degrading the V-ATPase subunit ATP6V1B2 through E54D-dependent ubiquitin ligase activity, thereby inhibiting lysosomal acidification and mitophagy. Moreover, hepatic-specific knockdown of Ubqln1 or hepatocyte-specific knockdown of Ogt significantly alleviates fibrosis and metabolic disorders in MASH mice. This study elucidates the critical role of the post-translational modification regulatory network of UBQLN1 in the progression of MASH and proposes its translational potential as an integrated therapeutic target, providing a theoretical basis for the development of sEV-based intervention strategies.
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