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Decipher the Mechanisms of Protein Conformational Changes Induced by Nucleotide Binding through Free-Energy Landscape Analysis: ATP Binding to Hsp70

机译:通过自由能景观分析破译核苷酸结合引起的蛋白质构象变化的机制:ATP与Hsp70的结合

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摘要

ATP regulates the function of many proteins in the cell by transducing its binding and hydrolysis energies into protein conformational changes by mechanisms which are challenging to identify at the atomic scale. Based on molecular dynamics (MD) simulations, a method is proposed to analyze the structural changes induced by ATP binding to a protein by computing the effective free-energy landscape (FEL) of a subset of its coordinates along its amino-acid sequence. The method is applied to characterize the mechanism by which the binding of ATP to the nucleotide-binding domain (NBD) of Hsp70 propagates a signal to its substrate-binding domain (SBD). Unbiased MD simulations were performed for Hsp70-DnaK chaperone in nucleotide-free, ADP-bound and ATP-bound states. The simulations revealed that the SBD does not interact with the NBD for DnaK in its nucleotide-free and ADP-bound states whereas the docking of the SBD was found in the ATP-bound state. The docked state induced by ATP binding found in MD is an intermediate state between the initial nucleotide-free and final ATP-bound states of Hsp70. The analysis of the FEL projected along the amino-acid sequence permitted to identify a subset of 27 protein internal coordinates corresponding to a network of 91 key residues involved in the conformational change induced by ATP binding. Among the 91 residues, 26 are identified for the first time, whereas the others were shown relevant for the allosteric communication of Hsp70 s in several experiments and bioinformatics analysis. The FEL analysis revealed also the origin of the ATP-induced structural modifications of the SBD recently measured by Electron Paramagnetic Resonance. The pathway between the nucleotide-free and the intermediate state of DnaK was extracted by applying principal component analysis to the subset of internal coordinates describing the transition. The methodology proposed is general and could be applied to analyze allosteric communication in other proteins.
机译:ATP通过将其结合和水解能转换为蛋白质构象变化的机制来调节细胞中许多蛋白质的功能,这些机制在原子尺度上难以鉴定。基于分子动力学(MD)模拟,提出了一种方法,通过计算沿其氨基酸序列的坐标子集的有效自由能态图(FEL),分析由ATP结合蛋白引起的结构变化。该方法用于表征ATP与Hsp70的核苷酸结合域(NBD)的结合将信号传播至其底物结合域(SBD)的机制。在无核苷酸,ADP结合和ATP结合状态下对Hsp70-DnaK分子伴侣进行了无偏MD模拟。模拟显示,在无核苷酸和ADP结合状态下,SBD与DnaK的NBD不相互作用,而在ATP结合状态下发现SBD的对接。 MD中发现的ATP结合诱导的对接状态是Hsp70的初始无核苷酸和最终ATP结合状态之间的中间状态。沿着氨基酸序列进行的FEL分析允许鉴定27个蛋白质内部坐标的子集,该子集对应于91个主要残基的网络,这些网络涉及ATP结合诱导的构象变化。在这91个残基中,首次鉴定出26个残基,而在其他一些实验和生物信息学分析中,显示出其他与Hsp70的变构通讯有关。 FEL分析还揭示了最近由电子顺磁共振测量的ATP诱导的SBD​​结构修饰的起源。通过将主成分分析应用于描述过渡的内部坐标子集,可以提取DnaK的无核苷酸状态与中间状态之间的途径。提出的方法是通用的,可用于分析其他蛋白质的变构通讯。

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