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Identification of Regions Involved in Substrate Binding and Dimer Stabilization within the Central Domains of Yeast Hsp40 Sis1

机译:酵母Hsp40 Sis1的中央域内涉及底物结合和二聚体稳定区域的识别。

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摘要

Protein folding, refolding and degradation are essential for cellular life and are regulated by protein homeostatic processes such those that involve the molecular chaperone DnaK/Hsp70 and its co-chaperone DnaJ. Hsp70 action is initiated when proteins from the DnaJ family bind an unfolded protein for delivery purposes. In eukaryotes, the DnaJ family can be divided into two main groups, Type I and Type II, represented by yeast cytosolic Ydj1 and Sis1, respectively. Although sharing some unique features both members of the DnaJ family, Ydj1 and Sis1 are structurally and functionally distinct as deemed by previous studies, including the observation that their central domains carry the structural and functional information even in switched chimeras. In this study, we combined several biophysical tools for evaluating the stability of Sis1 and mutants that had the central domains (named Gly/Met rich domain and C-terminal Domain I) deleted or switched to those of Ydj1 to gain insight into the role of these regions in the structure and function of Sis1. The mutants retained some functions similar to full length wild-type Sis1, however they were defective in others. We found that: 1) Sis1 unfolds in at least two steps as follows: folded dimer to partially folded monomer and then to an unfolded monomer. 2) The Gly/Met rich domain had intrinsically disordered characteristics and its deletion had no effect on the conformational stability of the protein. 3) The deletion of the C-terminal Domain I perturbed the stability of the dimer. 4) Exchanging the central domains perturbed the conformational stability of the protein. Altogether, our results suggest the existence of two similar subdomains in the C-terminal domain of DnaJ that could be important for stabilizing each other in order to maintain a folded substrate-binding site as well as the dimeric state of the protein.
机译:蛋白质折叠,重折叠和降解对于细胞生命至关重要,并且受蛋白质体内平衡过程的调节,例如涉及分子伴侣DnaK / Hsp70及其伴侣伴侣DnaJ的过程。当来自DnaJ家族的蛋白质结合未折叠的蛋白质以进行递送时,Hsp70的作用就会启动。在真核生物中,DnaJ家族可分为两个主要类别,即I型和II型,分别由酵母胞质Ydj1和Sis1代表。尽管共有一些独特的功能,DnaJ家族,Ydj1和Sis1的成员在结构和功能上都不同,如先前的研究所认为的那样,包括观察到它们的中心域即使在交换嵌合体中也具有结构和功能信息。在这项研究中,我们结合了几种生物物理工具来评估Sis1和突变体的稳定性,这些突变体的中心结构域(名为Gly / Met富集结构域和C端结构域I)已删除或切换到Ydj1的突变体,以深入了解其功能。这些区域在Sis1的结构和功能上。该突变体保留了与全长野生型Sis1类似的某些功能,但在其他突变体中却有缺陷。我们发现:1)Sis1在至少两个步骤中如下展开:折叠的二聚体为部分折叠的单体,然后为未折叠的单体。 2)富含Gly / Met的结构域具有固有的无序特性,其缺失对蛋白质的构象稳定性没有影响。 3)C末端结构域I的缺失干扰了二聚体的稳定性。 4)交换中心结构域扰乱了蛋白质的构象稳定性。总而言之,我们的结果表明在DnaJ的C末端域中存在两个相似的亚域,这对于稳定彼此,以维持折叠的底物结合位点以及该蛋白质的二聚体状态可能很重要。

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