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The m6A methyltransferase Mettl3 deficiency attenuates hepatic stellate cell activation and liver fibrosis

Authors :
Li, Yanli
Kang, Xinmei
Zhou, Zhuowei
Pan, Lijie
Chen, Huaxin
Liang, Xiaoqi
Chu, Jiajie
Dong, Shuai
Liu, Chang
Yu, Shanshan
Tu, Dan
Zhang, Yiwang
Ge, Mian
Chen, Wenjie
Xu, Yan
Zhang, Qi
Source :
Molecular Therapy; December 2022, Vol. 30 Issue: 12 p3714-3728, 15p
Publication Year :
2022

Abstract

Activation of hepatic stellate cells (HSCs) is a central driver of liver fibrosis. Previous investigations have identified various altered epigenetic landscapes during the cellular progression of HSC activation. N6-methyladenosine (m6A) is the most abundant internal RNA modification in eukaryotic cells and is dynamically regulated under various physiological and pathophysiological conditions. However, the functional role of Mettl3-mediated m6A in liver fibrosis remains elusive. Here, we found that the HSC-specific knockout of m6A methyltransferase Mettl3 suppressed HSC activation and significantly alleviated liver fibrosis. Multi-omics analysis of HSCs showed that Mettl3 depletion reduced m6A deposition on mRNA transcripts of Lats2(a central player of the Hippo/YAP signaling pathway) and slowed down their degradation. Elevated Lats2 increased phosphorylation of the downstream transcription factor YAP, suppressed YAP nuclear translocation, and decreased pro-fibrotic gene expression. Overexpressing YAP mutant resistant to phosphorylation by Lats2 partially rescued the activation and pro-fibrotic gene expression of Mettl3-deficient HSCs. Our study revealed that disruption of Mettl3 in HSCs mitigated liver fibrosis by controlling the Hippo/YAP signaling pathway, providing potential therapeutic strategies to alleviate liver fibrosis by targeting epitranscriptomic machinery.

Details

Language :
English
ISSN :
15250016 and 15250024
Volume :
30
Issue :
12
Database :
Supplemental Index
Journal :
Molecular Therapy
Publication Type :
Periodical
Accession number :
ejs61290290
Full Text :
https://doi.org/10.1016/j.ymthe.2022.07.020