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位点特异性磷酸化的Hsp90 C末端结构域变体为解读分子伴侣密码提供了途径。

Site-specifically Phosphorylated Hsp90C-terminal Domain Variants Provide Access to Deciphering the Chaperone Code.

作者信息

Gajsek Oliver, Becker Christian F W, Conibear Anne C

机构信息

Institute of Biological Chemistry, Faculty of Chemistry, University of Vienna, Währingerstraße 39, 1090, Vienna, Austria.

University of Vienna, Vienna Doctoral School in Chemistry (DoSChem), Währinger Str. 42, 1090, Vienna, Austria.

出版信息

Chemistry. 2025 Jan 27;31(6):e202403676. doi: 10.1002/chem.202403676. Epub 2024 Nov 27.

Abstract

The ubiquitous molecular chaperone Heat shock protein 90 (Hsp90) is pivotal in many cellular processes through folding of client proteins under stressed and normal conditions. Despite intensive research on its function as a chaperone, the influence of posttranslational modifications on Hsp90 (the 'chaperone code'), and its interactions with co-chaperones and client proteins, still remains to be elucidated. The C-terminal domain (CTD) of Hsp90 is essential for formation of the active homodimer state of Hsp90 and contains recognition sites for co-chaperones and client proteins. Here we used expressed protein selenoester ligation to introduce site-selective phosphorylations in the Hsp90 CTD, while preserving the native amino acid sequence. The two phosphorylations do not affect the overall secondary structure, but in combination, slightly decrease the thermal stability of the CTD. The Hsp90 CTD functions as a chaperone in decreasing aggregation of model client proteins, but the C-terminal phosphorylations do not significantly alter the anti-aggregation activity for these clients. The optimization of expressed protein selenoester ligation (EPSL) to carry out several steps in one pot provides an efficient route to access site-specifically modified Hsp90 CTD variants, allowing the generation of Hsp90 variants with site-specific PTMs to decipher the chaperone code.

摘要

普遍存在的分子伴侣热休克蛋白90(Hsp90)在许多细胞过程中起着关键作用,它在应激和正常条件下通过折叠客户蛋白来发挥作用。尽管对其作为分子伴侣的功能、翻译后修饰对Hsp90的影响(“分子伴侣密码”)及其与共分子伴侣和客户蛋白的相互作用进行了深入研究,但仍有待阐明。Hsp90的C末端结构域(CTD)对于Hsp90活性同二聚体状态的形成至关重要,并且包含共分子伴侣和客户蛋白的识别位点。在这里,我们使用表达蛋白硒酯连接法在Hsp90 CTD中引入位点选择性磷酸化,同时保留天然氨基酸序列。这两种磷酸化不会影响整体二级结构,但结合起来会略微降低CTD的热稳定性。Hsp90 CTD在减少模型客户蛋白聚集方面起分子伴侣作用,但C末端磷酸化不会显著改变这些客户蛋白的抗聚集活性。在一锅法中优化表达蛋白硒酯连接(EPSL)以进行多个步骤,为获得位点特异性修饰的Hsp90 CTD变体提供了一条有效途径,从而能够生成具有位点特异性翻译后修饰的Hsp90变体来解读分子伴侣密码。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3364/11771632/3a2bd9807f7a/CHEM-31-e202403676-g001.jpg

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