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Q61H K-ras 构象转变中保守水的作用。

The role of conserved waters in conformational transitions of Q61H K-ras.

机构信息

Department of Integrative Biology and Pharmacology, University of Texas Health Science Center at Houston, Houston, Texas, United States of America.

出版信息

PLoS Comput Biol. 2012;8(2):e1002394. doi: 10.1371/journal.pcbi.1002394. Epub 2012 Feb 16.

Abstract

To investigate the stability and functional role of long-residence water molecules in the Q61H variant of the signaling protein K-ras, we analyzed all available Ras crystal structures and conformers derived from a series of independent explicit solvent molecular dynamics (MD) simulations totaling 1.76 µs. We show that the protein samples a different region of phase space in the presence and absence of several crystallographically conserved and buried water molecules. The dynamics of these waters is coupled with the local as well as the global motions of the protein, in contrast to less buried waters whose exchange with bulk is only loosely coupled with the motion of loops in their vicinity. Aided by two novel reaction coordinates involving the distance (d) between the C(α) atoms of G60 at switch 2 and G10 at the P-loop and the N-C(α)-C-O dihedral (ξ) of G60, we further show that three water molecules located in lobe1, at the interface between the lobes and at lobe2, are involved in the relative motion of residues at the two lobes of Q61H K-ras. Moreover, a d/ξ plot classifies the available Ras x-ray structures and MD-derived K-ras conformers into active GTP-, intermediate GTP-, inactive GDP-bound, and nucleotide-free conformational states. The population of these states and the transition between them is modulated by water-mediated correlated motions involving the functionally critical switch 2, P-loop and helix 3. These results suggest that water molecules act as allosteric ligands to induce a population shift among distinct switch 2 conformations that differ in effector recognition.

摘要

为了研究信号蛋白 K-ras 的 Q61H 变体中长居留水分子的稳定性和功能作用,我们分析了所有可用的 Ras 晶体结构和来自一系列独立的显式溶剂分子动力学(MD)模拟的构象,总时长为 1.76µs。我们表明,在存在和不存在几个晶体学保守和埋藏水分子的情况下,蛋白质会在不同的相空间区域中进行采样。这些水分子的动力学与蛋白质的局部和全局运动相关联,而不是与周围环的运动耦合程度较低的埋藏水分子,其与周围环的运动只有松散的耦合。通过两个新的反应坐标(涉及开关 2 处的 G60 的 C(α)原子与 P-环处的 G10 之间的距离(d)和 G60 的 N-C(α)-C-O 二面角(ξ)),我们进一步表明,位于 lobe1、在 lobes 之间的界面处和 lobe2 处的三个水分子参与了 Q61H K-ras 两个 lobes 之间的残基相对运动。此外,d/ξ 图将可用的 Ras x 射线结构和 MD 衍生的 K-ras 构象分类为活性 GTP-、中间 GTP-、非活性 GDP-结合和无核苷酸构象状态。这些状态的种群及其之间的转换受到涉及功能关键开关 2、P-环和 3 螺旋的水介导的相关运动的调节。这些结果表明,水分子作为别构配体诱导不同开关 2 构象之间的种群转移,这些构象在效应物识别中存在差异。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1b48/3280954/a55b92bc6803/pcbi.1002394.g001.jpg

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