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利用加速分子动力学技术获取麦芽糖结合蛋白的隐藏构象。

Accessing a hidden conformation of the maltose binding protein using accelerated molecular dynamics.

机构信息

Department of Chemistry and Biochemistry and Center for Theoretical Biological Physics, University of California at San Diego, La Jolla, California, USA.

出版信息

PLoS Comput Biol. 2011 Apr;7(4):e1002034. doi: 10.1371/journal.pcbi.1002034. Epub 2011 Apr 21.

Abstract

Periplasmic binding proteins (PBPs) are a large family of molecular transporters that play a key role in nutrient uptake and chemotaxis in Gram-negative bacteria. All PBPs have characteristic two-domain architecture with a central interdomain ligand-binding cleft. Upon binding to their respective ligands, PBPs undergo a large conformational change that effectively closes the binding cleft. This conformational change is traditionally viewed as a ligand induced-fit process; however, the intrinsic dynamics of the protein may also be crucial for ligand recognition. Recent NMR paramagnetic relaxation enhancement (PRE) experiments have shown that the maltose binding protein (MBP) - a prototypical member of the PBP superfamily - exists in a rapidly exchanging (ns to µs regime) mixture comprising an open state (approx 95%), and a minor partially closed state (approx 5%). Here we describe accelerated MD simulations that provide a detailed picture of the transition between the open and partially closed states, and confirm the existence of a dynamical equilibrium between these two states in apo MBP. We find that a flexible part of the protein called the balancing interface motif (residues 175-184) is displaced during the transformation. Continuum electrostatic calculations indicate that the repacking of non-polar residues near the hinge region plays an important role in driving the conformational change. Oscillations between open and partially closed states create variations in the shape and size of the binding site. The study provides a detailed description of the conformational space available to ligand-free MBP, and has implications for understanding ligand recognition and allostery in related proteins.

摘要

周质结合蛋白(PBPs)是一个庞大的分子转运蛋白家族,在革兰氏阴性菌的营养物质摄取和趋化作用中起着关键作用。所有 PBPs 都具有特征性的双域结构,其中央的结构域间配体结合裂隙。在与各自的配体结合后,PBPs 会发生大的构象变化,有效地关闭结合裂隙。这种构象变化传统上被视为配体诱导契合过程;然而,蛋白质的固有动力学对于配体识别也可能至关重要。最近的 NMR 顺磁松弛增强(PRE)实验表明,麦芽糖结合蛋白(MBP)- PBP 超家族的典型成员-存在于一个快速交换(ns 到 µs 范围)的混合物中,由一个开放状态(约 95%)和一个较小的部分关闭状态(约 5%)组成。在这里,我们描述了加速的 MD 模拟,这些模拟提供了一个详细的开放状态和部分关闭状态之间的转换图,并确认在 apo MBP 中这两种状态之间存在动态平衡。我们发现,一个叫做平衡界面模体(残基 175-184)的蛋白质的柔性部分在转化过程中发生了位移。连续静电计算表明,铰链区域附近非极性残基的重新排列在驱动构象变化中起着重要作用。在开放状态和部分关闭状态之间的振荡会导致结合位点的形状和大小发生变化。该研究提供了配体自由 MBP 可用构象空间的详细描述,并对理解相关蛋白质的配体识别和变构作用具有重要意义。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8a70/3080849/6956c2f02def/pcbi.1002034.g001.jpg

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