面包师酵母过氧化物还原素Tsa1的相互作用表明它参与了中间代谢、糖酵解和锌稳态的氧化还原调节。

IF 2.9 3区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Metallomics Pub Date : 2025-08-05 DOI:10.1093/mtomcs/mfaf028
Colin W MacDiarmid, Yirong Wang, Janet Taggart, Ajay Vashisht, Xin Qing, James A Wohlschlegel, David J Eide
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引用次数: 0

摘要

锌(Zn)是支持一系列关键过程的必需营养素。在酿酒酵母中,锌缺乏诱导由Zap1激活子介导的转录反应,该激活子控制约80个基因的调控。一个亚群通过促进锌摄取及其在室间的分布来支持锌的稳态,而其余的则介导“适应性反应”以增强缺锌细胞的适应性。过氧化物还氧蛋白Tsa1是一种受zap1调控的适应因子,是缺锌酵母生长所必需的。Tsa1可以作为抗氧化过氧化物酶、蛋白质伴侣或氧化还原传感器发挥作用:后者的活性通过氧化还原接力机制氧化相关蛋白。我们之前报道过,在锌缺乏的细胞中,Tsa1抑制丙酮酸激酶(Pyk1)以保存磷酸烯醇丙酮酸,用于芳香氨基酸的合成。然而,这种调节对低锌环境下的适应性贡献相对较小,这表明Tsa1还针对其他对适应很重要的途径。与该模型一致,Tsa1的氧化还原传感器功能对ZnD细胞的生长至关重要。使用mbp标记的Tsa1版本,我们鉴定了与Pyk1的氧化还原敏感的非共价相互作用,并应用该系统鉴定了多个新的相互作用伙伴。这个相互作用组暗示Tsa1在关键过程的调节中,包括许多依赖锌的代谢途径。有趣的是,Zap1是Tsa1的靶点,因为Tsa1强烈地促进了Zap1激活域2的氧化,并且是Zap1完全活性所必需的。我们的研究结果揭示了锌缺乏的一种新的翻译后反应,它与zap1介导的转录反应重叠并相互关联。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The interactome of the Bakers' yeast peroxiredoxin Tsa1 implicates it in redox regulation of intermediary metabolism, glycolysis, and zinc homeostasis.

Zinc (Zn) is an essential nutrient supporting a range of critical processes. In the yeast Saccharomyces cerevisiae, Zn deficiency induces a transcriptional response mediated by the Zap1 activator, which controls a regulon of ∼80 genes. A subset support Zn homeostasis by promoting Zn uptake and its distribution between compartments, while the remainder mediate an 'adaptive response' to enhance fitness of Zn-deficient (ZnD) cells. The peroxiredoxin Tsa1 is a Zap1-regulated adaptive factor essential for the growth of ZnD yeast. Tsa1 can function as an antioxidant peroxidase, protein chaperone, or redox sensor: The latter activity oxidizes associated proteins via a redox relay mechanism. We previously reported that in ZnD cells, Tsa1 inhibits pyruvate kinase (Pyk1) to conserve phosphoenolpyruvate for aromatic amino acid synthesis. However, this regulation makes a relatively minor contribution to fitness in low Zn, suggesting that Tsa1 targets other pathways important to adaptation. Consistent with this model, the redox sensor function of Tsa1 was essential for growth of ZnD cells. Using a maltose binding protein-tagged version of Tsa1, we identified a redox-sensitive non-covalent interaction with Pyk1, and applied this system to identify multiple novel interacting partners. This interactome implicates Tsa1 in the regulation of critical processes including many Zn-dependent metabolic pathways. Interestingly, Zap1 is a Tsa1 target, as Tsa1 strongly promoted the oxidation of Zap1 activation domain 2 and was required for full Zap1 activity. Our findings reveal a novel posttranslational response to Zn deficiency, overlain on and interconnected with the Zap1-mediated transcriptional response.

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来源期刊
Metallomics
Metallomics 生物-生化与分子生物学
CiteScore
7.00
自引率
5.90%
发文量
87
审稿时长
1 months
期刊介绍: Global approaches to metals in the biosciences
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