Department of Pharmaceutical Chemistry and the Institute for Neurodegenerative Diseases, University of California San Francisco, San Francisco, CA, 94158, USA.
Cell Stress Chaperones. 2022 Jul;27(4):397-415. doi: 10.1007/s12192-022-01281-1. Epub 2022 Jun 7.
Heat shock protein 70 (Hsp70) is a molecular chaperone and central regulator of protein homeostasis (proteostasis). Paramount to this role is Hsp70's binding to client proteins and co-chaperones to produce distinct complexes, such that understanding the protein-protein interactions (PPIs) of Hsp70 is foundational to describing its function and dysfunction in disease. Mounting evidence suggests that these PPIs include both "canonical" interactions, which are universally conserved, and "non-canonical" (or "secondary") contacts that seem to have emerged in eukaryotes. These two categories of interactions involve discrete binding surfaces, such that some clients and co-chaperones engage Hsp70 with at least two points of contact. While the contributions of canonical interactions to chaperone function are becoming increasingly clear, it can be challenging to deconvolute the roles of secondary interactions. Here, we review what is known about non-canonical contacts and highlight examples where their contributions have been parsed, giving rise to a model in which Hsp70's secondary contacts are not simply sites of additional avidity but are necessary and sufficient to impart unique functions. From this perspective, we propose that further exploration of non-canonical contacts will generate important insights into the evolution of Hsp70 systems and inspire new approaches for developing small molecules that tune Hsp70-mediated proteostasis.
热休克蛋白 70(Hsp70)是一种分子伴侣,也是蛋白质稳态(蛋白质组学)的核心调节剂。Hsp70 的主要作用是与客户蛋白和共伴侣结合,产生不同的复合物,因此,了解 Hsp70 的蛋白质-蛋白质相互作用(PPIs)对于描述其在疾病中的功能和功能障碍是基础。越来越多的证据表明,这些 PPIs 既包括普遍保守的“经典”相互作用,也包括似乎在真核生物中出现的“非经典”(或“次要”)接触。这两类相互作用涉及离散的结合表面,因此一些客户蛋白和共伴侣与 Hsp70 的结合至少有两个接触点。虽然经典相互作用对伴侣功能的贡献越来越清楚,但要解析次要相互作用的作用可能具有挑战性。在这里,我们回顾了非经典接触的已知情况,并强调了对其贡献进行解析的例子,提出了一个模型,即 Hsp70 的次要接触不仅仅是额外亲和力的位点,而是赋予独特功能的必要和充分条件。从这个角度来看,我们建议进一步探索非经典接触将为 Hsp70 系统的进化产生重要的见解,并为开发调节 Hsp70 介导的蛋白质组学的小分子提供新的方法。