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首页> 外文期刊>Frontiers in Molecular Biosciences >A Not Obvious Correlation Between the Structure of Green Fluorescent Protein Chromophore Pocket and Hydrogen Bond Dynamics: A Choreography From ab initio Molecular Dynamics
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A Not Obvious Correlation Between the Structure of Green Fluorescent Protein Chromophore Pocket and Hydrogen Bond Dynamics: A Choreography From ab initio Molecular Dynamics

机译:绿色荧光蛋白发色团口袋和氢键动力学结构的不明显相关性:AB Initio分子动力学的思想

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摘要

The Green Fluorescent Protein (GFP) is a widely studied chemical system both for its large amount of applications and the complexity of the excited state proton transfer responsible of the change in the protonation state of the chromophore. A detailed investigation on the structure of the chromophore environment and the influence of chromophore form (either neutral or anionic) on it is of crucial importance to understand how these factors could potentially influence the protein function. In this study, we perform a detailed computational investigation based on the analysis of ab-initio molecular dynamics simulations, to disentangle the main structural quantities determining the fine balance in the chromophore environment. We found that specific hydrogen bonds interactions directly involving the chromophore (or not), are correlated to quantities such as the volume of the cavity in which the chromophore is embedded and that it is importantly affected by the chromophore protonation state. The cross-correlation analysis performed on some of these hydrogen bonds and the cavity volume, demonstrates a direct correlation among them and we also identified the ones specifically involved in this correlation. We also found that specific interactions among residues far in the space are correlated, demonstrating the complexity of the chromophore environment and that many structural quantities have to be taken into account to properly describe and understand the main factors tuning the active site of the protein. From an overall evaluation of the results obtained in this work, it is shown that the residues which a priori are perceived to be spectators play instead an important role in both influencing the chromophore environment (cavity volume) and its dynamics (cross-correlations among spatially distant residues).
机译:绿色荧光蛋白(GFP)是一种广泛研究的化学系统,用于其大量应用以及激发态质子转移的复杂性,其负责发色团的质子化状态的变化。详细研究了发色团环境的结构和发色团形式的影响(中性或阴离子)对其至关重要的重要性,了解这些因素如何影响蛋白质功能。在这项研究中,我们基于AB-Initio分子动力学模拟的分析来执行详细的计算调查,解除确定发色团环境中细平衡的主要结构数量。我们发现,直接涉及发色团(或不是)的特定氢键相互作用与嵌入发色团的腔体的量相关,并且其主要受发色体质子化状态的影响。对这些氢键和腔体积中的一些进行的互相关分析表明它们之间的直接相关性,我们还识别了具体参与该相关的那些。我们还发现远远在空间中的残留物之间的特定相互作用是相关的,证明了发色团环境的复杂性,并且必须考虑许多结构量以适当描述和理解调整蛋白质活性位点的主要因素。从整体评估在这项工作中获得的结果,显示了先验的残留物被认为是观众,而是影响发色团环境(腔体积)及其动力学(在空间之间的交叉相关)中的重要作用遥远的残留物)。

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