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Integrated screening identifies GPR31 as a key driver and druggable target for metabolic dysfunction–associated steatohepatitis
Xiao-Jing Zhang, Jiajun Fu, Xu Cheng, Hong Shen, Hailong Yang, Kun Wang, Wei Li, Han Tian, Tian Tian, Junjie Zhou, Song Tian, Zhouxiang Wang, Juan Wan, Lan Bai, Hongfei Duan, Xin Zhang, Ruifeng Tian, Haibo Xu, Rufang Liao, Toujun Zou, Jing Shi, Weiyi Qu, Liang Fang, Jingjing Cai, Peng Zhang, Zhi-Gang She, Jingwei Jiang, Yufeng Hu, Yibin Wang, Hongliang Li
Xiao-Jing Zhang, Jiajun Fu, Xu Cheng, Hong Shen, Hailong Yang, Kun Wang, Wei Li, Han Tian, Tian Tian, Junjie Zhou, Song Tian, Zhouxiang Wang, Juan Wan, Lan Bai, Hongfei Duan, Xin Zhang, Ruifeng Tian, Haibo Xu, Rufang Liao, Toujun Zou, Jing Shi, Weiyi Qu, Liang Fang, Jingjing Cai, Peng Zhang, Zhi-Gang She, Jingwei Jiang, Yufeng Hu, Yibin Wang, Hongliang Li
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Research Article Hepatology Metabolism

Integrated screening identifies GPR31 as a key driver and druggable target for metabolic dysfunction–associated steatohepatitis

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Abstract

Metabolic dysfunction–associated steatohepatitis (MASH) is a globally prevalent but intractable disease lacking effective pharmacotherapies. Here, we performed an integrated multilayered screening for pathogenic genes and druggable targets for MASH. We identified the subclass of metabolite-sensing G protein–coupled receptors, specifically GPR31, a critical contributor to MASH occurrence, which, to our knowledge, was previously uncharacterized. Mechanistically, Gαi3 is the essential downstream effector for the pro-MASH efficiency of GPR31 via glycosylation-dependent interaction with GPR31 and extra activation of PKCδ-MAPK signaling. Hepatocyte-specific GPR31 deficiency robustly blocked hepatic lipotoxicity and fibrosis in a mouse model of diet-induced MASH, whereas expression of the GPR31 transgene aggravated MASH development. Of translational importance, we developed a small-molecule inhibitor, named G4451, that specifically inhibits the GPR31-Gαi3 interaction by targeting the GPR31 conformational transition. Encouragingly, oral administration of G4451 effectively blocked MASH progression in preclinical models in both rodents and nonhuman primates. Collectively, the present study provides proof of concept that interference with GPR31 constitutes an attractive therapeutic strategy for MASH.

Authors

Xiao-Jing Zhang, Jiajun Fu, Xu Cheng, Hong Shen, Hailong Yang, Kun Wang, Wei Li, Han Tian, Tian Tian, Junjie Zhou, Song Tian, Zhouxiang Wang, Juan Wan, Lan Bai, Hongfei Duan, Xin Zhang, Ruifeng Tian, Haibo Xu, Rufang Liao, Toujun Zou, Jing Shi, Weiyi Qu, Liang Fang, Jingjing Cai, Peng Zhang, Zhi-Gang She, Jingwei Jiang, Yufeng Hu, Yibin Wang, Hongliang Li

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Figure 3

GPR31-Gαi3 interaction is essential for MASH aggravation.

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GPR31-Gαi3 interaction is essential for MASH aggravation.
(A and B) The ...
(A and B) The number of DEGs in enriched pathways regulated by GPR31 was analyzed integratively by comparing GPR31-overexpressed (A) and GPR31-deficient hepatocytes (B) with corresponding controls. n = 4. (C and D) GSEA of MAPK pathway in gain- and loss of function of GPR31 in hepatocytes and mouse liver tissues. n = 4. (E) Effect of GPR31 knockdown on the phosphorylation of key proteins in the MAPK signaling pathway in mouse primary hepatocytes. n = 3. (F) Co-IP assays were performed to examine the interaction of GPR31 and identified downstream small G proteins in HEK293T cells. n = 3. (G) Representative Western blot images showing the phosphorylation of key proteins in the MAPK signaling pathway in hepatocytes transfected with the indicated plasmids and shRNA. n = 3. (H) GST pull-down assays were performed to examine the interaction of GPR31 and GNAI3. n = 3. (I) Interacting domains of GPR31 and GNAI3 predicted by computer simulation. (J) Co-IP assays were performed to examine the interaction of GNAI3 and GPR31-WT or its docking mutant GPR31(5A). n = 3. (K) BODIPY staining of lipid droplets in hepatocytes with or without GNAI3 or its docking mutant GPR31(5A) overexpression. Scale bars: 30 μm. n = 3 with 8 images quantified. (L) Hepatocytes transfected with GPR31 or GPR31(5A). RNA was collected for RNA-Seq. KEGG pathway–based phenotypic characterization shown. n = 4. Data are shown as mean ± SEM. ***P < 0.001.

Copyright © 2026 American Society for Clinical Investigation
ISSN: 0021-9738 (print), 1558-8238 (online)

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