Plant-specific cochaperone SSR1 affects root elongation by modulating the mitochondrial iron-sulfur cluster assembly machinery.

IF 3.7 2区 生物学 Q1 GENETICS & HEREDITY PLoS Genetics Pub Date : 2025-02-05 eCollection Date: 2025-02-01 DOI:10.1371/journal.pgen.1011597
Xuanjun Feng, Yue Hu, Tao Xie, Huiling Han, Diana Bonea, Lijuan Zeng, Jie Liu, Wenhan Ying, Bona Mu, Yuanyuan Cai, Min Zhang, Yanli Lu, Rongmin Zhao, Xuejun Hua
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Abstract

To elucidate the molecular function of SHORT AND SWOLLEN ROOT1 (SSR1), we screened for suppressors of the ssr1-2 (sus) was performed and identified over a dozen candidates with varying degrees of root growth restoration. Among these, the two most effective suppressors, sus1 and sus2, resulted from G87D and T55M single amino acid substitutions in HSCA2 (At5g09590) and ISU1 (At4g22220), both crucial components of the mitochondrial iron-sulfur (Fe-S) cluster assembly machinery. SSR1 displayed a robust cochaperone-like activity and interacted with HSCA2 and ISU1, facilitating the binding of HSCA2 to ISU1. In comparison to the wild-type plants, ssr1-2 mutants displayed increased iron accumulation in root tips and altered expression of genes responsive to iron deficiency. Additionally, the enzymatic activities of several iron-sulfur proteins and the mitochondrial membrane potential were reduced in ssr1-2 mutants. Interestingly, SSR1 appears to be exclusive to plant lineages and is induced by environmental stresses. Although HSCA2G87D and ISU1T55M can effectively compensate for the phenotypes associated with SSR1 deficiency under favorable conditions, their compensatory effects are significantly diminished under stress. Collectively, SSR1 represents a new and significant component of the mitochondrial Fe-S cluster assembly (ISC) machinery. It may also confer adaptive advantages on plant ISC machinery in response to environmental stress.

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植物特异性协同伴侣SSR1通过调节线粒体铁硫簇组装机制影响根伸长。
为了阐明短而肿胀的根t1 (SSR1)的分子功能,我们筛选了SSR1 -2 (sus)的抑制因子,并鉴定了十多个具有不同程度根生长恢复的候选物。其中,最有效的两个抑制因子sus1和sus2是由HSCA2 (At5g09590)和ISU1 (At4g22220)中的G87D和T55M单氨基酸取代而产生的,这两个基因都是线粒体铁硫(Fe-S)簇组装机制的关键组成部分。SSR1表现出强大的伴侣蛋白样活性,并与HSCA2和ISU1相互作用,促进HSCA2与ISU1的结合。与野生型植物相比,ssr1-2突变体表现出根尖铁积累增加和铁缺乏响应基因表达改变。此外,一些铁硫蛋白的酶活性和线粒体膜电位在ssr1-2突变体中降低。有趣的是,SSR1似乎是植物谱系所独有的,是由环境胁迫诱导的。虽然HSCA2G87D和ISU1T55M在有利条件下可以有效补偿与SSR1缺乏相关的表型,但在逆境下,它们的补偿作用显著减弱。总的来说,SSR1代表了线粒体Fe-S簇组装(ISC)机制的一个新的重要组成部分。它也可能赋予植物ISC机制对环境胁迫的适应性优势。
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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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