Kityk Roman, Vogel Markus, Schlecht Rainer, Bukau Bernd, Mayer Matthias P
Zentrum für Molekulare Biologie der Universität Heidelberg (ZMBH), DKFZ-ZMBH-Alliance, INF282, D-69120 Heidelberg, Germany.
Zentrum für Molekulare Biologie der Universität Heidelberg (ZMBH), Deutsches Krebsforschungszentrum, DKFZ-ZMBH-Alliance, INF282, D-69120 Heidelberg, Germany.
Nat Commun. 2015 Sep 18;6:8308. doi: 10.1038/ncomms9308.
Central to the protein folding activity of Hsp70 chaperones is their ability to interact with protein substrates in an ATP-controlled manner, which relies on allosteric regulation between their nucleotide-binding (NBD) and substrate-binding domains (SBD). Here we dissect this mechanism by analysing mutant variants of the Escherichia coli Hsp70 DnaK blocked at distinct steps of allosteric communication. We show that the SBD inhibits ATPase activity by interacting with the NBD through a highly conserved hydrogen bond network, and define the signal transduction pathway that allows bound substrates to trigger ATP hydrolysis. We identify variants deficient in only one direction of allosteric control and demonstrate that ATP-induced substrate release is more important for chaperone activity than substrate-stimulated ATP hydrolysis. These findings provide evidence of an unexpected dichotomic allostery mechanism in Hsp70 chaperones and provide the basis for a comprehensive mechanical model of allostery in Hsp70s.
Hsp70分子伴侣的蛋白质折叠活性的核心在于它们能够以ATP控制的方式与蛋白质底物相互作用,这依赖于其核苷酸结合结构域(NBD)和底物结合结构域(SBD)之间的变构调节。在这里,我们通过分析在变构通讯不同步骤受阻的大肠杆菌Hsp70 DnaK的突变变体来剖析这一机制。我们表明,SBD通过一个高度保守的氢键网络与NBD相互作用来抑制ATP酶活性,并定义了允许结合的底物触发ATP水解的信号转导途径。我们鉴定出仅在变构控制的一个方向上存在缺陷的变体,并证明ATP诱导的底物释放对分子伴侣活性比底物刺激的ATP水解更为重要。这些发现为Hsp70分子伴侣中意外的二分变构机制提供了证据,并为Hsp70变构的全面力学模型奠定了基础。