Castelli Matteo, Bhattacharya Kaushik, Abboud Ernest, Serapian Stefano A, Picard Didier, Colombo Giorgio
Department of Chemistry, University of Pavia, Via Taramelli 12, 27100 Pavia, Italy. Electronic address: https://twitter.com/mat_castelli.
Department of Molecular and Cellular Biology, Université de Genève, Sciences III, 1211 Genève 4, Switzerland. Electronic address: https://twitter.com/kaushik34371359.
J Mol Biol. 2023 Feb 1;435(3):167931. doi: 10.1016/j.jmb.2022.167931. Epub 2022 Dec 23.
The molecular chaperones Hsp90 and Hsp70 and their regulatory co-chaperone Hop play a key role at the crossroads of the folding pathways of numerous client proteins by forming fine-tuned multiprotein complexes. Alterations of the biomolecules involved may functionally impact the chaperone machinery: here, we integrate simulations and experiments to unveil how Hop conformational fitness and interactions can be controlled by the perturbation of just one residue. Specifically, we unveil how mechanisms mediated by Hop residue Y354 control Hop open and closed states, which affect binding of Hsp70/Hsp90. Phosphorylation or mutation of Hop-Y354 are shown to favor structural ensembles that are indeed not optimal for stable interactions with Hsp90 and Hsp70. This disfavors cellular accumulation of the stringent Hsp90 clients glucocorticoid receptor and the viral tyrosine kinase v-Src, with detrimental effects on v-Src activity. Our results show how the post-translational modification of a specific residue in Hop provides a regulation mechanism for the larger chaperone complex of which it is part. In this framework, the effects of one single alteration are amplified at the cellular level through the perturbation of protein-interaction networks.
分子伴侣Hsp90和Hsp70及其调节性共伴侣Hop通过形成精细调节的多蛋白复合物,在众多客户蛋白的折叠途径交叉点发挥关键作用。所涉及生物分子的改变可能在功能上影响伴侣机制:在此,我们整合模拟和实验,以揭示仅一个残基的扰动如何控制Hop的构象适应性和相互作用。具体而言,我们揭示了由Hop残基Y354介导的机制如何控制Hop的开放和关闭状态,这会影响Hsp70/Hsp90的结合。研究表明,Hop-Y354的磷酸化或突变有利于形成实际上对与Hsp90和Hsp70稳定相互作用并非最佳的结构集合。这不利于严格的Hsp90客户糖皮质激素受体和病毒酪氨酸激酶v-Src在细胞内的积累,并对v-Src活性产生有害影响。我们的结果表明,Hop中特定残基的翻译后修饰如何为其所属的更大伴侣复合物提供一种调节机制。在此框架下,单一改变的影响通过蛋白质相互作用网络的扰动在细胞水平上被放大。