Ubp2 modulates DJ-1-mediated redox-dependent mitochondrial dynamics in Saccharomyces cerevisiae.

IF 4 2区 生物学 Q1 GENETICS & HEREDITY
PLoS Genetics Pub Date : 2025-07-03 eCollection Date: 2025-07-01 DOI:10.1371/journal.pgen.1011353
Sananda Biswas, Patrick D'Silva
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引用次数: 0

Abstract

Mitochondrial integrity is a crucial determinant of overall cellular health. Mitochondrial dysfunction and impediments in regulating organellar homeostasis contribute majorly to the pathophysiological manifestation of several neurological disorders. Mutations in human DJ-1 (PARK7) have been implicated in the deregulation of mitochondrial homeostasis, a critical cellular etiology observed in Parkinson's disease progression. DJ-1 is a multifunctional protein belonging to the DJ-1/ThiJ/PfpI superfamily, conserved across the phylogeny. Although the pathophysiological significance of DJ-1 has been well-established, the underlying molecular mechanism(s) by which DJ-1 paralogs modulate mitochondrial maintenance and other cellular processes remains elusive. Using Saccharomyces cerevisiae as the model organism, we unravel the intricate mechanism by which yeast DJ-1 paralogs (collectively called Hsp31 paralogs) modulate mitochondrial homeostasis. Our study establishes a genetic synthetic interaction between Ubp2, a cysteine-dependent deubiquitinase, and DJ-1 paralogs. In the absence of DJ-1 paralogs, mitochondria adapt to a highly tubular network due to enhanced expression of Fzo1. Intriguingly, the loss of Ubp2 restores the mitochondrial integrity in the DJ-1 deletion background by modulating the ubiquitination status of Fzo1. Besides, the loss of Ubp2 in the absence of DJ-1 restores mitochondrial respiration and functionality by regulating the mitophagic flux. Further, Ubp2 deletion makes cells resistant to oxidative stress without DJ-1 paralogs. For the first time, our study deciphers functional crosstalk between Ubp2 and DJ-1 in regulating mitochondrial homeostasis and cellular health.

Ubp2调节酿酒酵母中dj -1介导的氧化还原依赖的线粒体动力学。
线粒体完整性是整体细胞健康的关键决定因素。线粒体功能障碍和细胞器稳态调节障碍是几种神经系统疾病的病理生理表现的主要原因。人类DJ-1 (PARK7)突变与线粒体稳态失调有关,这是帕金森病进展中观察到的关键细胞病因。DJ-1是一种多功能蛋白,属于DJ-1/ThiJ/PfpI超家族,在整个系统发育中都是保守的。虽然DJ-1的病理生理意义已经确立,但DJ-1类似物调节线粒体维持和其他细胞过程的潜在分子机制仍然难以捉摸。以酿酒酵母为模式生物,我们揭示了酵母DJ-1类似物(统称为Hsp31类似物)调节线粒体稳态的复杂机制。我们的研究建立了Ubp2(一种半胱氨酸依赖性去泛素酶)和DJ-1类似物之间的遗传合成相互作用。在没有DJ-1类似物的情况下,由于Fzo1的表达增强,线粒体适应高度管状网络。有趣的是,Ubp2的缺失通过调节Fzo1的泛素化状态来恢复DJ-1缺失背景下的线粒体完整性。此外,在DJ-1缺失的情况下,Ubp2的缺失通过调节线粒体自噬通量来恢复线粒体呼吸和功能。此外,Ubp2缺失使细胞在没有DJ-1类似物的情况下抵抗氧化应激。我们的研究首次破译了Ubp2和DJ-1在调节线粒体稳态和细胞健康方面的功能串扰。
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来源期刊
PLoS Genetics
PLoS Genetics GENETICS & HEREDITY-
自引率
2.20%
发文量
438
期刊介绍: PLOS Genetics is run by an international Editorial Board, headed by the Editors-in-Chief, Greg Barsh (HudsonAlpha Institute of Biotechnology, and Stanford University School of Medicine) and Greg Copenhaver (The University of North Carolina at Chapel Hill). Articles published in PLOS Genetics are archived in PubMed Central and cited in PubMed.
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