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真核细胞质 Hsp70 的变构景观由关键界面的进化调节形成。

Allosteric landscapes of eukaryotic cytoplasmic Hsp70s are shaped by evolutionary tuning of key interfaces.

机构信息

Department of Biochemistry and Molecular Biology, University of Massachusetts Amherst, Amherst, MA 01003.

Department of Biochemistry and Molecular Biology, University of Massachusetts Amherst, Amherst, MA 01003;

出版信息

Proc Natl Acad Sci U S A. 2018 Nov 20;115(47):11970-11975. doi: 10.1073/pnas.1811105115. Epub 2018 Nov 5.

Abstract

The 70-kDa heat shock proteins (Hsp70s) are molecular chaperones that perform a wide range of critical cellular functions. They assist in the folding of newly synthesized proteins, facilitate assembly of specific protein complexes, shepherd proteins across membranes, and prevent protein misfolding and aggregation. Hsp70s perform these functions by a conserved mechanism that relies on allosteric cycles of nucleotide-modulated binding and release of client proteins. Current models for Hsp70 allostery have come from extensive study of the bacterial Hsp70, DnaK. Extending our understanding to eukaryotic Hsp70s is extremely important not only in providing a likely common mechanistic framework but also because of their central roles in cellular physiology. In this study, we examined the allosteric behaviors of the eukaryotic cytoplasmic Hsp70s, HspA1 and Hsc70, and found significant differences from that of DnaK. We found that HspA1 and Hsc70 favor a state in which the nucleotide-binding domain (NBD) and substrate-binding domain (SBD) are intimately docked significantly more as compared to DnaK. Past work established that the NBD-SBD interface and the helical lid-β-SBD interface govern the allosteric landscape of DnaK. Here, we identified sites on these interfaces that differ between eukaryotic cytoplasmic Hsp70s and DnaK. Our mutational analysis has revealed key evolutionary variations that account for the population shifts between the docked and undocked conformations. These results underline the tunability of Hsp70 functions by modulation of allosteric interfaces through evolutionary diversification and also suggest sites where the binding of small-molecule modulators could influence Hsp70 function.

摘要

70kDa 热休克蛋白(Hsp70s)是分子伴侣,具有广泛的关键细胞功能。它们协助新合成蛋白质的折叠,促进特定蛋白质复合物的组装,引导蛋白质穿过膜,并防止蛋白质错误折叠和聚集。Hsp70s 通过依赖核苷酸调节结合和释放客户蛋白的变构循环的保守机制来执行这些功能。目前的 Hsp70 变构模型来自对细菌 Hsp70、DnaK 的广泛研究。将我们的理解扩展到真核 Hsp70 不仅在提供可能的共同机制框架方面非常重要,而且因为它们在细胞生理学中的核心作用。在这项研究中,我们研究了真核细胞质 Hsp70s、HspA1 和 Hsc70 的变构行为,发现与 DnaK 有很大的不同。我们发现 HspA1 和 Hsc70 倾向于核苷酸结合域(NBD)和底物结合域(SBD)紧密对接的状态,与 DnaK 相比,这种状态更为明显。过去的工作建立了 NBD-SBD 界面和螺旋盖-β-SBD 界面控制 DnaK 的变构景观。在这里,我们确定了这些界面上在真核细胞质 Hsp70 和 DnaK 之间存在差异的位点。我们的突变分析揭示了导致对接和未对接构象之间种群转移的关键进化变异。这些结果强调了通过进化多样化调节变构界面来调节 Hsp70 功能的可调性,并且还提示了结合小分子调节剂可能影响 Hsp70 功能的位点。

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