Department of Computational and Systems Biology, School of Medicine, University of Pittsburgh, Pittsburgh, Pennsylvania, United States of America.
PLoS Comput Biol. 2010 Sep 16;6(9):e1000931. doi: 10.1371/journal.pcbi.1000931.
Catalysis of ADP-ATP exchange by nucleotide exchange factors (NEFs) is central to the activity of Hsp70 molecular chaperones. Yet, the mechanism of interaction of this family of chaperones with NEFs is not well understood in the context of the sequence evolution and structural dynamics of Hsp70 ATPase domains. We studied the interactions of Hsp70 ATPase domains with four different NEFs on the basis of the evolutionary trace and co-evolution of the ATPase domain sequence, combined with elastic network modeling of the collective dynamics of the complexes. Our study reveals a subtle balance between the intrinsic (to the ATPase domain) and specific (to interactions with NEFs) mechanisms shared by the four complexes. Two classes of key residues are distinguished in the Hsp70 ATPase domain: (i) highly conserved residues, involved in nucleotide binding, which mediate, via a global hinge-bending, the ATPase domain opening irrespective of NEF binding, and (ii) not-conserved but co-evolved and highly mobile residues, engaged in specific interactions with NEFs (e.g., N57, R258, R262, E283, D285). The observed interplay between these respective intrinsic (pre-existing, structure-encoded) and specific (co-evolved, sequence-dependent) interactions provides us with insights into the allosteric dynamics and functional evolution of the modular Hsp70 ATPase domain.
核苷酸交换因子 (NEF) 催化 ADP-ATP 交换对于 Hsp70 分子伴侣的活性至关重要。然而,在 Hsp70 ATP 酶结构域的序列进化和结构动力学的背景下,该家族伴侣与 NEF 的相互作用机制尚未得到很好的理解。我们基于 ATP 酶结构域序列的进化轨迹和共进化,以及复合物整体动力学的弹性网络建模,研究了 Hsp70 ATP 酶结构域与四种不同的 NEF 的相互作用。我们的研究揭示了四个复合物共有的内在(ATP 酶结构域固有)和特定(与 NEF 相互作用)机制之间的微妙平衡。在 Hsp70 ATP 酶结构域中区分出两类关键残基:(i) 高度保守的残基,参与核苷酸结合,通过全局铰链弯曲介导 ATP 酶结构域的打开,而与 NEF 结合无关,以及 (ii) 不保守但共进化且高度灵活的残基,与 NEF 发生特异性相互作用(例如,N57、R258、R262、E283、D285)。观察到的这些内在(预先存在的、结构编码的)和特定(共进化的、序列依赖性的)相互作用之间的相互作用为我们提供了对模块化 Hsp70 ATP 酶结构域的变构动力学和功能进化的深入了解。