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USP10 mitigates Ang II–induced atrial remodeling and atrial fibrillation susceptibility by deubiquitinating NDUFS1
Wanrong Fu, Xiao-Xu Tian, Jianghua Zhou, Yu-Xu Huang, Huan Li, Zhenya Wang, Tong-You Wade Wei, Li Li, Guo-Jun Zhao
Wanrong Fu, Xiao-Xu Tian, Jianghua Zhou, Yu-Xu Huang, Huan Li, Zhenya Wang, Tong-You Wade Wei, Li Li, Guo-Jun Zhao
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Research Article Cardiology Vascular biology

USP10 mitigates Ang II–induced atrial remodeling and atrial fibrillation susceptibility by deubiquitinating NDUFS1

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Abstract

Atrial fibrillation (AF) contributes to cardiovascular morbidity and mortality. Ubiquitin-specific peptidase 10 (USP10) plays a crucial role in numerous cellular processes; however, its particular role in AF remains largely unexplored. In the present study, USP10 expression was assessed in human atrial samples and angiotensin II–treated (Ang II–treated) mouse atrial tissues. An Ang II–induced AF mouse model was employed to investigate the effects of USP10 on atrial remodeling and AF susceptibility. Calcium imaging and patch clamp techniques were used to evaluate USP10’s influence on calcium handling and triggered activity. Additionally, RNA sequencing, coimmunoprecipitation, and ubiquitination assays were performed to explore the regulatory interactions between USP10 and NADH:ubiquinone oxidoreductase subunit S1 (NDUFS1). Our findings demonstrate that USP10 is downregulated in atrial tissues from mouse models and patients with AF. USP10 overexpression counteracts Ang II–induced atrial remodeling and reduces AF susceptibility. Furthermore, USP10 contributes to the restoration of mitochondrial function in AF. Mechanistically, USP10 deubiquitinates NDUFS1 at lysine 621, stabilizing NDUFS1 protein levels and mitigating Ang II–induced mitochondrial dysfunction. This study uncovers a critical mechanistic link between USP10 and NDUFS1. Our findings suggest that upregulating USP10 or targeting NDUFS1 degradation could provide an alternative therapeutic strategy to mitigate AF progression and associated cardiovascular risk.

Authors

Wanrong Fu, Xiao-Xu Tian, Jianghua Zhou, Yu-Xu Huang, Huan Li, Zhenya Wang, Tong-You Wade Wei, Li Li, Guo-Jun Zhao

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Figure 4

USP10 overexpression contributes to the restoration of mitochondrial function.

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USP10 overexpression contributes to the restoration of mitochondrial fun...
(A) Sample-to-sample distance plot of HL-1 atrial myocytes expressing Ad-USP10 or Ad-Vector analyzed by RNA-seq (n = 4/group). (B) GO enrichment analysis showing enriched pathways related to mitochondrial function, calcium ion transport, and cardiac rhythm based on RNA-seq data (n = 4/group). (C) GO enrichment analysis showing enriched pathways related to fatty acid β-oxidation, oxidative phosphorylation, and the TCA cycle (n = 4/group). (D) ATP content in atrial cardiomyocytes obtained from WT and Usp10-CTg mice in response to vehicle or Ang II (n = 6/group). (E) OCR profiles indicating mitochondrial respiratory function in atrial cells isolated from WT and Usp10-CTg mice treated with vehicle or Ang II. (F) Quantification of basal respiration and maximal respiration in atrial cells isolated from WT and Usp10-CTg mice treated with vehicle or Ang II (n = 6/group). (G) MitoSOX-based flow cytometry of ROS in atrial cells isolated from WT and Usp10-CTg mice treated with vehicle or Ang II, combining a schematic illustration of the method with quantitative data (bottom; n = 6). (H) WikiPathways enrichment analysis of differentially expressed genes (DEGs) identified from RNA-seq by comparing Ang II–treated HL-1 cells expressing Ad-USP10 with those expressing Ad-Vector. Upregulated and downregulated DEGs were analyzed separately. Data are presented as mean ± SEM and were analyzed using 2-way ANOVA followed by Tukey’s multiple-comparison test (D, F, and G). *P < 0.05; **P < 0.01. USP10, ubiquitin-specific peptidase 10; Ang II, angiotensin II; GO, Gene Ontology; OCR, oxygen consumption rate; TCA cycle, tricarboxylic acid cycle; ROS, reactive oxygen species.

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