Regad Leslie, Chéron Jean-Baptiste, Triki Dhoha, Senac Caroline, Flatters Delphine, Camproux Anne-Claude
Molécules thérapeutiques in silico (MTi), INSERM UMR-S973, Paris, France.
Université Paris Diderot, Sorbonne Paris Cité, Paris, France.
PLoS One. 2017 Aug 17;12(8):e0182972. doi: 10.1371/journal.pone.0182972. eCollection 2017.
Protein flexibility is often implied in binding with different partners and is essential for protein function. The growing number of macromolecular structures in the Protein Data Bank entries and their redundancy has become a major source of structural knowledge of the protein universe. The analysis of structural variability through available redundant structures of a target, called multiple target conformations (MTC), obtained using experimental or modeling methods and under different biological conditions or different sources is one way to explore protein flexibility. This analysis is essential to improve the understanding of various mechanisms associated with protein target function and flexibility. In this study, we explored structural variability of three biological targets by analyzing different MTC sets associated with these targets. To facilitate the study of these MTC sets, we have developed an efficient tool, SA-conf, dedicated to capturing and linking the amino acid and local structure variability and analyzing the target structural variability space. The advantage of SA-conf is that it could be applied to divers sets composed of MTCs available in the PDB obtained using NMR and crystallography or homology models. This tool could also be applied to analyze MTC sets obtained by dynamics approaches. Our results showed that SA-conf tool is effective to quantify the structural variability of a MTC set and to localize the structural variable positions and regions of the target. By selecting adapted MTC subsets and comparing their variability detected by SA-conf, we highlighted different sources of target flexibility such as induced by binding partner, by mutation and intrinsic flexibility. Our results support the interest to mine available structures associated with a target using to offer valuable insight into target flexibility and interaction mechanisms. The SA-conf executable script, with a set of pre-compiled binaries are available at http://www.mti.univ-paris-diderot.fr/recherche/plateformes/logiciels.
蛋白质的灵活性通常在与不同配体结合时体现出来,并且对蛋白质功能至关重要。蛋白质数据库条目中不断增加的大分子结构及其冗余性已成为蛋白质世界结构知识的主要来源。通过使用实验或建模方法在不同生物学条件或不同来源下获得的目标蛋白的可用冗余结构(称为多目标构象,MTC)来分析结构变异性,是探索蛋白质灵活性的一种方法。这种分析对于增进对与蛋白质目标功能和灵活性相关的各种机制的理解至关重要。在本研究中,我们通过分析与这些目标相关的不同MTC集,探索了三个生物目标的结构变异性。为便于研究这些MTC集,我们开发了一种高效工具SA-conf,专门用于捕捉和关联氨基酸及局部结构变异性,并分析目标结构变异性空间。SA-conf的优势在于它可应用于由通过NMR、晶体学或同源模型获得的PDB中的MTC组成的多样集合。该工具也可用于分析通过动力学方法获得的MTC集。我们的结果表明,SA-conf工具可有效地量化MTC集的结构变异性,并定位目标的结构可变位置和区域。通过选择合适的MTC子集并比较SA-conf检测到的它们的变异性,我们突出了目标灵活性的不同来源,如由结合配体、突变和内在灵活性所诱导的。我们的结果支持利用与目标相关的可用结构来深入了解目标灵活性和相互作用机制的研究价值。SA-conf可执行脚本以及一组预编译二进制文件可在http://www.mti.univ-paris-diderot.fr/recherche/plateformes/logiciels获取。