Department of Pathology and the Life Sciences Institute, University of Michigan, Ann Arbor, USA.
ACS Chem Biol. 2010 Jun 18;5(6):611-22. doi: 10.1021/cb1000422.
Heat shock protein 70 (Hsp70) is a highly conserved molecular chaperone that plays multiple roles in protein homeostasis. In these various tasks, the activity of Hsp70 is shaped by interactions with co-chaperones, such as Hsp40. The Hsp40 family of co-chaperones binds to Hsp70 through a conserved J-domain, and these factors stimulate ATPase and protein-folding activity. Using chemical screens, we identified a compound, 115-7c, which acts as an artificial co-chaperone for Hsp70. Specifically, the activities of 115-7c mirrored those of a Hsp40; the compound stimulated the ATPase and protein-folding activities of a prokaryotic Hsp70 (DnaK) and partially compensated for a Hsp40 loss-of-function mutation in yeast. Consistent with these observations, NMR and mutagenesis studies indicate that the binding site for 115-7c is adjacent to a region on DnaK that is required for J-domain-mediated stimulation. Interestingly, we found that 115-7c and the Hsp40 do not compete for binding but act in concert. Using this information, we introduced additional steric bulk to 115-7c and converted it into an inhibitor. Thus, these chemical probes either promote or inhibit chaperone functions by regulating Hsp70-Hsp40 complex assembly at a native protein-protein interface. This unexpected mechanism may provide new avenues for exploring how chaperones and co-chaperones cooperate to shape protein homeostasis.
热休克蛋白 70(Hsp70)是一种高度保守的分子伴侣,在蛋白质稳态中发挥多种作用。在这些不同的任务中,Hsp70 的活性受到与伴侣蛋白如 Hsp40 的相互作用的影响。伴侣蛋白 Hsp40 家族通过保守的 J 结构域与 Hsp70 结合,这些因子刺激 ATP 酶和蛋白质折叠活性。我们使用化学筛选方法,鉴定出一种名为 115-7c 的化合物,它作为 Hsp70 的人工伴侣蛋白发挥作用。具体来说,115-7c 的活性与 Hsp40 的活性相似;该化合物刺激原核 Hsp70(DnaK)的 ATP 酶和蛋白质折叠活性,并在酵母中部分补偿 Hsp40 功能丧失突变。与这些观察结果一致,NMR 和诱变研究表明,115-7c 的结合位点位于 DnaK 上一个与 J 结构域介导的刺激相关的区域附近。有趣的是,我们发现 115-7c 和 Hsp40 并不争夺结合,而是协同作用。利用这些信息,我们在 115-7c 上引入了额外的空间位阻,并将其转化为抑制剂。因此,这些化学探针通过调节天然蛋白质-蛋白质界面上的 Hsp70-Hsp40 复合物组装,要么促进要么抑制伴侣蛋白的功能。这种意想不到的机制可能为探索伴侣蛋白和伴侣蛋白如何合作塑造蛋白质稳态提供新的途径。