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古菌热休克蛋白60(Hsp60)的功能多样性:I型和II型伴侣蛋白的分子镶嵌体

Functional diversity in archaeal Hsp60: a molecular mosaic of Group I and Group II chaperonin.

作者信息

Bhakta Koustav, Roy Mousam, Samanta Shirsha, Ghosh Abhrajyoti

机构信息

Department of Biological Sciences, Bose Institute, Kolkata, India.

出版信息

FEBS J. 2024 Oct;291(19):4323-4348. doi: 10.1111/febs.17213. Epub 2024 Jun 26.

Abstract

External stress disrupts the balance of protein homeostasis, necessitating the involvement of heat shock proteins (Hsps) in restoring equilibrium and ensuring cellular survival. The thermoacidophilic crenarchaeon Sulfolobus acidocaldarius, lacks the conventional Hsp100, Hsp90, and Hsp70, relying solely on a single ATP-dependent Group II chaperonin, Hsp60, comprising three distinct subunits (α, β, and γ) to refold unfolded substrates and maintain protein homeostasis. Hsp60 forms three different complexes, namely Hsp60αβγ, Hsp60αβ, and Hsp60β, at temperatures of 60 °C, 75 °C, and 90 °C, respectively. This study delves into the intricacies of Hsp60 complexes in S. acidocaldarius, uncovering their ability to form oligomeric structures in the presence of ATP. The recognition of substrates by Hsp60 involves hydrophobic interactions, and the subsequent refolding process occurs in an ATP-dependent manner through charge-driven interactions. Furthermore, the Hsp60β homo-oligomeric complex can protect the archaeal and eukaryotic membrane from stress-induced damage. Hsp60 demonstrates nested cooperativity in ATP hydrolysis activity, where MWC-type cooperativity is nested within KNF-type cooperativity. Remarkably, during ATP hydrolysis, Hsp60β, and Hsp60αβ complexes exhibit a mosaic behavior, aligning with characteristics observed in both Group I and Group II chaperonins, adding a layer of complexity to their functionality.

摘要

外部压力会破坏蛋白质稳态的平衡,这就需要热休克蛋白(Hsps)参与恢复平衡并确保细胞存活。嗜热嗜酸泉古菌嗜酸热硫化叶菌缺乏传统的Hsp100、Hsp90和Hsp70,仅依赖一种ATP依赖的II型伴侣蛋白Hsp60,该蛋白由三个不同的亚基(α、β和γ)组成,用于重新折叠未折叠的底物并维持蛋白质稳态。Hsp60在60°C、75°C和90°C的温度下分别形成三种不同的复合物,即Hsp60αβγ、Hsp60αβ和Hsp60β。本研究深入探讨了嗜酸热硫化叶菌中Hsp60复合物的复杂性,发现它们在ATP存在下能够形成寡聚结构。Hsp60对底物的识别涉及疏水相互作用,随后的重新折叠过程通过电荷驱动的相互作用以ATP依赖的方式发生。此外,Hsp60β同型寡聚复合物可以保护古菌和真核细胞膜免受应激诱导的损伤。Hsp60在ATP水解活性中表现出嵌套协同性,其中MWC型协同性嵌套在KNF型协同性之中。值得注意的是,在ATP水解过程中,Hsp60β和Hsp60αβ复合物表现出镶嵌行为,这与在I型和II型伴侣蛋白中观察到的特征一致,为它们的功能增添了一层复杂性。

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