HLF and PPARα axis regulates metabolic-associated fatty liver disease through extracellular vesicles derived from the intestinal microbiota

IF 23.7 Q1 MICROBIOLOGY iMeta Pub Date : 2025-04-07 DOI:10.1002/imt2.70022
Xingzhen Yang, Jiale Wang, Xinyu Qi, Menglong Hou, Mengkuan Liu, Yang Xiao, Siqi Liu, Jinfeng Zhou, Jingsu Yu, Yang Wang, Guo Chen, Lin Yu, Khongorzul Batchuluun, Batbold Batsaikhan, Turtushikh Damba, Yuehui Liang, Xue Liang, Jie Ma, Yunxiao Liang, Yixing Li, Lei Zhou
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Abstract

Metabolic-associated fatty liver disease (MAFLD) has become increasingly widespread. The intestine is the primary site of lipid absorption and is important for the homeostasis of lipid metabolism. However, the mechanism underlying the participation of the intestinal tract in the development of MAFLD requires additional investigation. In this study, analysis of the single-cell transcriptome of intestinal tissue from cynomolgus monkeys found that hepatic leukemia factor (HLF) participated in the genetic regulation of intestinal lipid absorption. Results obtained from normal and intestine-specific Hlf-knockout mice confirmed that HLF alleviated intestinal barrier disorders by inhibiting peroxisome proliferator-activated receptor alpha (PPARα) expression. The HLF/PPARα axis alleviated MAFLD by mediating gut microbiota-derived extracellular vesicles (fEVs), thereby inhibiting hepatocyte ferroptosis. Lipidomics and functional experiments verified that taurochenodeoxycholic acid (TCDCA), a conjugated bile acid contained in the fEVs, had a key role in the process. In conclusion, intestinal HLF activity was mediated by fEVs and identified as a novel therapeutic target for MAFLD.

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HLF和PPARα轴通过来自肠道微生物群的细胞外囊泡调节代谢相关的脂肪肝疾病
代谢相关性脂肪肝(MAFLD)越来越普遍。肠道是吸收脂质的主要部位,对脂质代谢的平衡非常重要。然而,肠道参与 MAFLD 发病的机制还需要进一步研究。在这项研究中,对猴肠组织单细胞转录组的分析发现,肝白血病因子(HLF)参与了肠道脂质吸收的遗传调控。从正常小鼠和肠道特异性 Hlf 基因敲除小鼠身上获得的结果证实,HLF 可通过抑制过氧化物酶体增殖激活受体α(PPARα)的表达来缓解肠道屏障紊乱。HLF/PPARα轴通过介导肠道微生物群衍生的细胞外囊泡(fEVs)缓解了MAFLD,从而抑制了肝细胞铁变态反应。脂质组学和功能实验证实,fEVs 中含有的一种共轭胆汁酸--头孢烯醇脱氧胆酸(TCDCA)在这一过程中发挥了关键作用。总之,肠道 HLF 活性由 fEVs 介导,并被确定为 MAFLD 的新型治疗靶点。
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