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The force-dependent mechanism of DnaK-mediated mechanical folding

机译:DnaK介导的机械折叠的力依赖机制

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It is well established that chaperones modulate the protein folding free-energy landscape. However, the molecular determinants underlying chaperone-mediated mechanical folding remain largely elusive, primarily because the force-extended unfolded conformation fundamentally differs from that characterized in biochemistry experiments. We use single-molecule force-clamp spectroscopy, combined with molecular dynamics simulations, to study the effect that the Hsp70 system has on the mechanical folding of three mechanically stiff model proteins. Our results demonstrate that, when working independently, DnaJ (Hsp40) and DnaK (Hsp70) work as holdases, blocking refolding by binding to distinct substrate conformations. Whereas DnaK binds to molten globule–like forms, DnaJ recognizes a cryptic sequence in the extended state in an unanticipated force-dependent manner. By contrast, the synergetic coupling of the Hsp70 system exhibits a marked foldase behavior. Our results offer unprecedented molecular and kinetic insights into the mechanisms by which mechanical force finely regulates chaperone binding, directly affecting protein elasticity.
机译:众所周知,伴侣蛋白可调节蛋白质折叠的自由能态。然而,分子伴侣决定的分子折叠的分子决定因素仍然难以捉摸,这主要是由于力扩展的未折叠构象与生化实验中所描述的根本不同。我们使用单分子力夹谱,结合分子动力学模拟,来研究Hsp70系统对三种机械刚性模型蛋白的机械折叠的影响。我们的结果表明,当独立工作时,DnaJ(Hsp40)和DnaK(Hsp70)充当保持酶,通过结合不同的底物构象来阻止重折叠。 DnaK与熔融小球状形式结合,而DnaJ则以意想不到的力依赖性方式识别处于延伸状态的密码序列。相比之下,Hsp70系统的协同偶联表现出明显的折叠酶行为。我们的结果提供了前所未有的分子和动力学洞察力,其机制通过机械力精细调节分子伴侣的结合,直接影响蛋白质的弹性。

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