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GMP 与人 Glrx3 以及酿酒酵母 Grx3 和 Grx4 的相互作用集中在 Gcn2 途径的调控上。

Interactions of GMP with Human Glrx3 and with Saccharomyces cerevisiae Grx3 and Grx4 Converge in the Regulation of the Gcn2 Pathway.

机构信息

Cell Signalling in Yeast Unit, Department of Basic Medical Sciences, Institut de Recerca Biomèdica de Lleida (IRBLleida), University of Lleida, Lleida, Spain.

Cell Signalling in Yeast Unit, Department of Basic Medical Sciences, Institut de Recerca Biomèdica de Lleida (IRBLleida), University of Lleida, Lleida, Spain

出版信息

Appl Environ Microbiol. 2020 Jul 2;86(14). doi: 10.1128/AEM.00221-20.

Abstract

The human monothiol glutaredoxin Glrx3 (PICOT) is ubiquitously distributed in cytoplasm and nuclei in mammalian cells. Its overexpression has been associated with the development of several types of tumors, whereas its deficiency might cause retardation in embryogenesis. Its exact biological role has not been well resolved, although a function as a chaperone distributing iron/sulfur clusters is currently accepted. Yeast humanization and the use of a mouse library have allowed us to find a new partner for PICOT: the human GMP synthase (hGMPs). Both proteins carry out collaborative functions regarding the downregulation of the Gcn2 pathway under conditions of nutritional stress. Glrx3/hGMPs interact through conserved residues that bridge iron/sulfur clusters and glutathione. This mechanism is also conserved in budding yeast, whose proteins Grx3/Grx4, along with ( GMPs), also downregulate the integrated stress response (ISR) pathway. The heterologous expression of Glrx3/hGMPs efficiently complements Grx3/Grx4. Moreover, the heterologous expression of Glrx3 efficiently complements the novel participation in chronological life span that has been characterized for both Grx3 and Grx4. Our results underscore that the Glrx3/Grx3/Grx4 family presents an evolutionary and functional conservation in signaling events that is partly related to GMP function and contributes to cell life extension. is an optimal eukaryotic microbial model to study biological processes in higher organisms despite the divergence in evolution. The molecular function of yeast glutaredoxins Grx3 and Grx4 is enormously interesting, since both proteins are required to maintain correct iron homeostasis and an efficient response to oxidative stress. The human orthologous Glrx3 (PICOT) is involved in a number of human diseases, including cancer. Our research expanded its utility to human cells. Yeast has allowed the characterization of GMP synthase as a new interacting partner for Glrx3 and also for yeast Grx3 and Grx4, the complex monothiol glutaredoxins/GMPs that participate in the downregulation of the activity of the Gcn2 stress pathway. This mechanism is conserved in yeast and humans. Here, we also show that this family of glutaredoxins, Grx3/Grx4/Glrx3, also has a function related to life extension.

摘要

人源单硫醇谷氧还蛋白 Glrx3(PICOT)在哺乳动物细胞的细胞质和细胞核中广泛分布。其过表达与多种类型肿瘤的发生有关,而其缺乏可能导致胚胎发育迟缓。尽管目前认为其作为一种分配铁/硫簇的伴侣蛋白具有功能,但它的确切生物学作用尚未得到很好的解决。酵母的人源化和使用小鼠文库使我们能够为 PICOT 找到一个新的伙伴:人鸟苷酸合酶(hGMPs)。这两种蛋白质在营养应激条件下通过协同作用下调 Gcn2 途径的活性。Glrx3/hGMPs 通过桥连铁/硫簇和谷胱甘肽的保守残基相互作用。该机制在芽殖酵母中也是保守的,其蛋白质 Grx3/Grx4 与(GMPs)一起,也下调整合应激反应(ISR)途径。Glrx3/hGMPs 的异源表达可以有效地互补 Grx3/Grx4。此外,Glrx3 的异源表达有效地补充了 Grx3 和 Grx4 所具有的新型参与细胞寿命的特征。我们的结果强调,Glrx3/Grx3/Grx4 家族在与 GMP 功能部分相关的信号事件中表现出进化和功能上的保守性,有助于细胞寿命的延长。酵母是研究高等生物生物学过程的最佳真核微生物模型,尽管在进化上存在差异。酵母谷氧还蛋白 Grx3 和 Grx4 的分子功能非常有趣,因为这两种蛋白质都需要维持正确的铁稳态和对氧化应激的有效反应。人源同源物 Glrx3(PICOT)参与了许多人类疾病,包括癌症。我们的研究将其用途扩展到人类细胞。酵母使我们能够将鸟苷酸合酶表征为 Glrx3 和酵母 Grx3 和 Grx4 的新相互作用伙伴,Grx3 和 Grx4 是参与下调 Gcn2 应激途径活性的单硫醇谷氧还蛋白/GMP 复合物。该机制在酵母和人类中是保守的。在这里,我们还表明,这种谷氧还蛋白家族,Grx3/Grx4/Glrx3,也具有与寿命延长相关的功能。

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