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Hepatic glutathione depletion ameliorates MASLD through selective protein oxidation and inhibition of lipogenesis
Xiang-Yu Liu, Guoxiao Wang, Yingying Yu, Haopeng Xiao, Kentaro Oh-hashi, Xu Shi, Shuning Zheng, Robert Gerszten, C. Ronald Kahn
Xiang-Yu Liu, Guoxiao Wang, Yingying Yu, Haopeng Xiao, Kentaro Oh-hashi, Xu Shi, Shuning Zheng, Robert Gerszten, C. Ronald Kahn
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Research Article Cell biology Hepatology Metabolism

Hepatic glutathione depletion ameliorates MASLD through selective protein oxidation and inhibition of lipogenesis

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Abstract

Glutathione (GSH) maintains a reduced cellular environment and is widely believed to mitigate disease-associated oxidative damage to proteins, thereby protecting against metabolic dysfunction–associated steatotic liver disease (MASLD). However, this widely accepted assumption remains largely untested because of challenges in physiologically manipulating hepatic GSH levels during disease development. Here, we have utilized liver-specific overexpression of cation transport regulator homolog 1 (Chac1), a recently identified intracellular GSH-degrading enzyme, to induce hepatic GSH depletion during MASLD progression. Contrary to canonical doctrine, GSH depletion unexpectedly protects against MASLD by substantially decreasing hepatic lipogenesis and fibrosis without triggering an oxidative stress response. Mechanistically, GSH depletion does not cause global protein oxidation but instead selectively oxidizes and destabilizes fatty acid synthase while decreasing lipogenic gene expression at the transcriptional level, collectively suppressing lipogenesis. Interestingly, Chac1 expression is decreased in livers of patients with MASLD, highlighting its potential therapeutic relevance. These findings revise the conventional view of GSH in protein redox and demonstrate that targeted redox manipulation through GSH depletion protects against MASLD.

Authors

Xiang-Yu Liu, Guoxiao Wang, Yingying Yu, Haopeng Xiao, Kentaro Oh-hashi, Xu Shi, Shuning Zheng, Robert Gerszten, C. Ronald Kahn

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Figure 5

Selective protein oxidation by GSH depletion.

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Selective protein oxidation by GSH depletion.
(A) Protein redoxome analy...
(A) Protein redoxome analysis on mouse livers. SH, thiol; SOx, oxidized thiol; IAM, iodoacetamide; CPT, cysteine-reactive phosphate tags. (B) 3D volcano plot showing cysteines with differential levels of oxidation following GSH depletion. Red: cysteines with increased oxidation. Cysteines with significantly increased oxidation were defined as those with a P < 0.05, with a relative oxidation increase of at least 25%, and falling within the top 15% of all sites ranked by the absolute increase of oxidation level. (C) Motif analysis of cysteines with increased oxidation. Cysteine is fixed at the position 0. Over- and underrepresented motifs were identified using pLOGO (https://plogo.uconn.edu/). (D) Position weight matrix of amino acids in overrepresented motifs surrounding cysteine sites with increased oxidation. (E) Pathways enriched in proteins containing cysteines with increased oxidation. Pathways were identified using DAVID GO analysis (https://davidbioinformatics.nih.gov/) , with the top 5 pathways ranked by P value displayed. (F) Interactome of proteins containing cysteines with increased oxidation generated using GeneMANIA. (G) Rank of detected proteins by the number of cysteines with increased oxidation (top 10 shown). (H) Predicted structure of mouse FASN (AF-P19096-F1-v4). Cysteines with increased oxidation were labeled black. (I) Immunoblot analysis of FASN in mouse livers. The β-tubulin loading control is identical to Figure 1C, as the same protein lysates were analyzed. (J) Quantification of immunoblots. (K) Fasn mRNA levels in mouse liver. (L) Protein levels of FASN in primary hepatocytes following Chac1 overexpression using Adv. Cells were harvested 3 days postinfection. (M) Fasn mRNA levels in primary hepatocytes (Adv: 400 μL/mL medium; 3 days postinfection). (N) Lipid accumulation in primary hepatocytes. Cells were treated with siRNAs and palmitic acid (0.25 mM) 12 hours after infection with Adv overexpressing GFP or Chac1. Nile red staining was performed 3 days postinfection. ***P < 0.001.

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

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