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由粗粒化分子动力学阐明 PDZ 结合到 PICK1 的 BAR 结构域。

PDZ binding to the BAR domain of PICK1 is elucidated by coarse-grained molecular dynamics.

机构信息

Baker Laboratory of Chemistry and Chemical Biology, Cornell University, Ithaca, New York 14853-1301, USA.

出版信息

J Mol Biol. 2011 Jan 7;405(1):298-314. doi: 10.1016/j.jmb.2010.10.051. Epub 2010 Nov 2.

DOI:10.1016/j.jmb.2010.10.051
PMID:21050858
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3008210/
Abstract

A key regulator of α-amino-3-hydroxy-5-methylisoxazole-4-propionic acid (AMPA) receptor traffic, PICK1 is known to interact with over 40 other proteins, including receptors, transporters and ionic channels, and to be active mostly as a homodimer. The current lack of a complete PICK1 structure determined at atomic resolution hinders the elucidation of its functional mechanisms. Here, we identify interactions between the component PDZ and BAR domains of PICK1 by calculating possible binding sites for the PDZ domain of PICK1 (PICK1-PDZ) to the homology-modeled, crescent-shaped dimer of the PICK1-BAR domain using multiplexed replica-exchange molecular dynamics (MREMD) and canonical molecular dynamics simulations with the coarse-grained UNRES force field. The MREMD results show that the preferred binding site for the single PDZ domain is the concave cavity of the BAR dimer. A second possible binding site is near the N-terminus of the BAR domain that is linked directly to the PDZ domain. Subsequent short canonical molecular dynamics simulations used to determine how the PICK1-PDZ domain moves to the preferred binding site on the BAR domain of PICK1 revealed that initial hydrophobic interactions drive the progress of the simulated binding. Thus, the concave face of the BAR dimer accommodates the PDZ domain first by weak hydrophobic interactions and then the PDZ domain slides to the center of the concave face, where more favorable hydrophobic interactions take over.

摘要

作为α-氨基-3-羟基-5-甲基异恶唑-4-丙酸(AMPA)受体运输的关键调节因子,PICK1 已知与超过 40 种其他蛋白质相互作用,包括受体、转运体和离子通道,并主要作为同源二聚体发挥作用。目前缺乏完整的原子分辨率 PICK1 结构,这阻碍了其功能机制的阐明。在这里,我们通过计算 PICK1-PDZ 与同源建模的 crescent-shaped PICK1-BAR 二聚体之间可能的结合位点,使用多重置换分子动力学(MREMD)和使用粗粒度 UNRES 力场的正则分子动力学模拟,确定了 PICK1 的 PDZ 和 BAR 结构域之间的相互作用。MREMD 结果表明,单个 PDZ 结构域的首选结合位点是 BAR 二聚体的凹腔。第二个可能的结合位点位于 BAR 结构域的 N 端附近,该位点直接与 PDZ 结构域相连。随后使用短的正则分子动力学模拟来确定 PICK1-PDZ 结构域如何移动到 PICK1 的 BAR 结构域上的首选结合位点,结果表明初始的疏水相互作用驱动了模拟结合的进展。因此,BAR 二聚体的凹面首先通过弱疏水相互作用容纳 PDZ 结构域,然后 PDZ 结构域滑动到凹面的中心,在那里占据更有利的疏水相互作用。

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