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Probing protein ensemble rigidity and hydrogen-deuterium exchange

机译:探测蛋白质的整体刚度和氢-氘交换

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Protein rigidity and flexibility can be analyzed accurately and efficiently using the program floppy inclusion and rigid substructure topography (FIRST). Previous studies using FIRST were designed to analyze the rigidity and flexibility of proteins using a single static (snapshot) structure. It is however well known that proteins can undergo spontaneous sub-molecular unfolding and refolding, or conformational dynamics, even under conditions that strongly favor a well-defined native structure. These (local) unfolding events result in a large number of conformers that differ from each other very slightly. In this context, proteins are better represented as a thermodynamic ensemble of 'native-like' structures, and not just as a single static low-energy structure. Working with this notion, we introduce a novel FIRST-based approach for predicting rigidity/flexibility of the protein ensemble by (i) averaging the hydrogen bonding strengths from the entire ensemble and (ii) by refining the mathematical model of hydrogen bonds. Furthermore, we combine our FIRST-ensemble rigidity predictions with the ensemble solvent accessibility data of the backbone amides and propose a novel computational method which uses both rigidity and solvent accessibility for predicting hydrogen-deuterium exchange (HDX). To validate our predictions, we report a novel site specific HDX experiment which characterizes the native structural ensemble of Acylphosphatase from hyperthermophile Sulfolobus solfataricus (Sso AcP). The sub-structural conformational dynamics that is observed by HDX data, is closely matched with the FIRST-ensemble rigidity predictions, which could not be attained using the traditional single 'snapshot' rigidity analysis. Moreover, the computational predictions of regions that are protected from HDX and those that undergo exchange are in very good agreement with the experimental HDX profile of Sso AcP.
机译:可以使用程序软盘包含和刚性子结构形貌(FIRST)来准确,高效地分析蛋白质的刚性和柔韧性。先前使用FIRST进行的研究旨在通过单个静态(快照)结构来分析蛋白质的刚性和柔韧性。然而,众所周知,即使在强烈赞成良好定义的天然结构的条件下,蛋白质也可能经历自发的亚分子解折叠和重折叠或构象动力学。这些(局部)展开事件导致大量的构象异构体彼此之间非常微小的差异。在这种情况下,蛋白质可以更好地表示为“天然”结构的热力学集合,而不仅仅是单个静态低能结构。以此概念为基础,我们引入了一种新的基于FIRST的方法来预测蛋白质集合的刚度/柔韧性,方法是:(i)平均整个集合的氢键强度,以及(ii)完善氢键的数学模型。此外,我们将FIRST整体刚性预测值与主链酰胺的整体溶剂可及性数据相结合,并提出了一种使用刚性和溶剂可及性来预测氢氘交换(HDX)的新颖计算方法。为了验证我们的预测,我们报告了一个新颖的针对特定地点的HDX实验,该实验表征了来自嗜热嗜盐菌(Sulfolobus solfataricus)(Sso AcP)的酰基磷酸酶的天然结构整体。通过HDX数据观察到的亚结构构型动力学与FIRST整体刚度预测紧密匹配,而使用传统的“快照”刚度分析无法获得这种预测。此外,受HDX保护的区域以及进行交换的区域的计算预测与Sso AcP的实验HDX轮廓非常吻合。

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