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FBXO7/ntc 和 USP30 拮抗作用设定了基础线粒体自噬的泛素化阈值,并为体内 Pink1 磷酸化提供了靶标。

FBXO7/ntc and USP30 antagonistically set the ubiquitination threshold for basal mitophagy and provide a target for Pink1 phosphorylation in vivo.

机构信息

MRC Mitochondrial Biology Unit, University of Cambridge, Cambridge Biomedical Campus, Cambridge, United Kingdom.

出版信息

PLoS Biol. 2023 Aug 3;21(8):e3002244. doi: 10.1371/journal.pbio.3002244. eCollection 2023 Aug.

Abstract

Functional analyses of genes linked to heritable forms of Parkinson's disease (PD) have revealed fundamental insights into the biological processes underpinning pathogenic mechanisms. Mutations in PARK15/FBXO7 cause autosomal recessive PD and FBXO7 has been shown to regulate mitochondrial homeostasis. We investigated the extent to which FBXO7 and its Drosophila orthologue, ntc, share functional homology and explored its role in mitophagy in vivo. We show that ntc mutants partially phenocopy Pink1 and parkin mutants and ntc overexpression supresses parkin phenotypes. Furthermore, ntc can modulate basal mitophagy in a Pink1- and parkin-independent manner by promoting the ubiquitination of mitochondrial proteins, a mechanism that is opposed by the deubiquitinase USP30. This basal ubiquitination serves as the substrate for Pink1-mediated phosphorylation that triggers stress-induced mitophagy. We propose that FBXO7/ntc works in equilibrium with USP30 to provide a checkpoint for mitochondrial quality control in basal conditions in vivo and presents a new avenue for therapeutic approaches.

摘要

与遗传性帕金森病(PD)相关基因的功能分析揭示了对致病机制所基于的生物学过程的基本认识。PARK15/FBXO7 突变导致常染色体隐性 PD,并且已经表明 FBXO7 调节线粒体动态平衡。我们研究了 FBXO7 及其果蝇直系同源物 ntc 在功能上的同源性程度,并探讨了其在体内噬线粒体中的作用。我们表明,ntc 突变体部分表型类似于 Pink1 和 parkin 突变体,ntc 过表达可以抑制 parkin 表型。此外,ntc 可以通过促进线粒体蛋白的泛素化以 Pink1 和 parkin 非依赖性的方式调节基础的噬线粒体作用,该机制被去泛素化酶 USP30 拮抗。这种基础泛素化作为 Pink1 介导的磷酸化的底物,触发应激诱导的噬线粒体作用。我们提出 FBXO7/ntc 与 USP30 处于平衡状态,为体内基础条件下的线粒体质量控制提供了一个检查点,并为治疗方法提供了新途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c7d8/10427020/0fc884b95731/pbio.3002244.g001.jpg

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