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Fbxo11通过介导Fosl2的泛素化降解来维持线粒体功能,并预防阿霉素诱导的肾病中的足细胞损伤。

Fbxo11 maintains mitochondrial function and prevents podocyte injury in adriamycin-induced nephropathy by mediating the ubiquitin degradation of Fosl2.

作者信息

Jin Yanhua, Wang Huan, Xin Yu, Zhang Yanning

机构信息

Department of Nephrology, General Hospital of Northern Theater Command, No.83, Wenhua Road, Shenhe District, Shenyang, Liaoning, 110016, China.

Department of Nephrology, General Hospital of Northern Theater Command, No.83, Wenhua Road, Shenhe District, Shenyang, Liaoning, 110016, China.

出版信息

Exp Cell Res. 2025 Jan 1;444(1):114345. doi: 10.1016/j.yexcr.2024.114345. Epub 2024 Nov 23.

DOI:10.1016/j.yexcr.2024.114345
PMID:39581215
Abstract

Mitochondrial dysfunction is a pivotal factor in the onset of podocyte damage, which is a central component in the pathogenesis of nephrotic syndrome (NS). However, the precise mechanisms underlying the changes in podocyte mitochondria remain elusive. Our study aims to clarify the potential mechanisms involved in the role of F-box protein 11 (Fbxo11) in NS, specifically concentrating on its impact on mitochondrial function. A mouse model was established by tail vein injection of adriamycin (ADR, 10 mg/kg) and was infected with lentivirus overexpressing Fbxo11 (lenti-Fbxo11-OE). Mouse podocytes (MPC-5) were infected with lenti-Fbxo11-OE, followed by treatment with 0.4 μg/mL of ADR. We identified the decreased expression of Fbxo11 in mouse renal tissues and MPC-5 cells induced by ADR. Lenti-Fbxo11-OE intervention relieved ADR-induced glomerular lesion, podocyte injury, and mitochondrial dysfunction. In vitro, overexpression of Fbxo11 in mouse podocytes improved mitochondrial function and reduced podocyte damage, thereby inhibiting podocyte apoptosis. Mechanistically, Fbxo11 decreased the protein expression of Fosl2 through ubiquitin-dependent proteasomal degradation. Rescue experiments revealed that overexpression of Fosl2 abolished the protective effects of Fbxo11 overexpression on mitochondrial damage and podocyte injury. Importantly, the regulatory effects of the Fbxo11/Fosl2 axis were reversed when treated with the mitochondrial fission inhibitor mdivi-1. Taken together, our results demonstrated that Fbxo11-mediated protein degradation of Fosl2 is critical for maintaining mitochondrial function and preventing podocyte injury during NS.

摘要

线粒体功能障碍是足细胞损伤发生的关键因素,而足细胞损伤是肾病综合征(NS)发病机制的核心组成部分。然而,足细胞线粒体变化的精确机制仍不清楚。我们的研究旨在阐明F-box蛋白11(Fbxo11)在NS中的作用所涉及的潜在机制,特别关注其对线粒体功能的影响。通过尾静脉注射阿霉素(ADR,10mg/kg)建立小鼠模型,并感染过表达Fbxo11的慢病毒(lenti-Fbxo11-OE)。小鼠足细胞(MPC-5)感染lenti-Fbxo11-OE,随后用0.4μg/mL的ADR处理。我们发现ADR诱导的小鼠肾组织和MPC-5细胞中Fbxo11表达降低。Lenti-Fbxo11-OE干预减轻了ADR诱导的肾小球病变、足细胞损伤和线粒体功能障碍。在体外,小鼠足细胞中Fbxo11的过表达改善了线粒体功能并减少了足细胞损伤,从而抑制了足细胞凋亡。机制上,Fbxo11通过泛素依赖性蛋白酶体降解降低了Fosl2的蛋白表达。挽救实验表明,Fosl2的过表达消除了Fbxo11过表达对线粒体损伤和足细胞损伤的保护作用。重要的是,当用线粒体分裂抑制剂mdivi-1处理时,Fbxo11/Fosl2轴的调节作用被逆转。综上所述,我们的结果表明,Fbxo11介导的Fosl2蛋白降解对于维持NS期间的线粒体功能和预防足细胞损伤至关重要。

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