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Global dynamics of yeast Hsp90 middle and C-terminal dimer studied by advanced sampling simulations

机译:通过高级采样模拟研究了酵母Hsp90中和C端二聚体的全局动力学

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The Hsp90 protein complex is one of the most abundant molecular chaperone proteins that assists in folding of a variety of client proteins. During its functional cycle it undergoes large domain rearrangements coupled to the hydrolysis of ATP and association or dissociation of domain interfaces. In order to better understand the domain dynamics comparative Molecular Dynamics (MD) simulations of a sub-structure of Hsp90, the dimer formed by the middle (M) and C-terminal domain (C), were performed. Since this MC dimer lacks the ATP-binding N-domain it allows studying global motions decoupled from ATP binding and hydrolysis. Conventional (c)MD simulations starting from several different closed and open conformations resulted in only limited sampling of global motions. However, the application of a Hamiltonian Replica exchange (H-REMD) method based on the addition of a biasing potential extracted from a coarse-grained elastic network description of the system allowed much broader sampling of domain motions than the cMD simulations. With this multiscale approach it was possible to extract the main directions of global motions and to obtain insight into the molecular mechanism of the global structural transitions of the MC dimer.
机译:Hsp90蛋白复合物是最丰富的分子伴侣蛋白之一,可帮助折叠各种客户蛋白。在其功能周期中,它经历了与ATP水解以及域界面缔合或解离相关的大域重排。为了更好地了解域动力学,对Hsp90的子结构进行了比较分子动力学(MD)模拟,该分子由中间(M)和C端结构域(C)形成。由于该MC二聚体缺少ATP结合的N结构域,因此它允许研究与ATP结合和水解解耦的整体运动。从几种不同的闭合和开放构象开始的常规(c)MD模拟仅导致全局运动的有限采样。但是,基于添加从系统的粗粒度弹性网络描述中提取的偏置电势的汉密尔顿副本交换(H-REMD)方法的应用,可以实现比cMD模拟更广泛的域运动采样。通过这种多尺度方法,可以提取整体运动的主要方向,并深入了解MC二聚体整体结构转变的分子机理。

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