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Recent Advances in Computational Protocols Addressing Intrinsically Disordered Proteins

机译:解决固有蛋白紊乱的计算协议的最新进展

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Intrinsically disordered proteins (IDP) are abundant in the human genome and have recently emerged as major therapeutic targets for various diseases. Unlike traditional proteins that adopt a definitive structure, IDPs in free solution are disordered and exist as an ensemble of conformations. This enables the IDPs to signal through multiple signaling pathways and serve as scaffolds for multi-protein complexes. The challenge in studying IDPs experimentally stems from their disordered nature. Nuclear magnetic resonance (NMR), circular dichroism, small angle X-ray scattering, and single molecule F?rster resonance energy transfer (FRET) can give the local structural information and overall dimension of IDPs, but seldom provide a unified picture of the whole protein. To understand the conformational dynamics of IDPs and how their structural ensembles recognize multiple binding partners and small molecule inhibitors, knowledge-based and physics-based sampling techniques are utilized in-silico, guided by experimental structural data. However, efficient sampling of the IDP conformational ensemble requires traversing the numerous degrees of freedom in the IDP energy landscape, as well as force-fields that accurately model the protein and solvent interactions. In this review, we have provided an overview of the current state of computational methods for studying IDP structure and dynamics and discussed the major challenges faced in this field.
机译:本质上无序的蛋白质(IDP)在人类基因组中含量很高,最近已成为各种疾病的主要治疗靶标。与采用确定性结构的传统蛋白质不同,游离溶液中的IDP无序,并以构象整体形式存在。这使IDP能够通过多种信号通路进行信号传递,并充当多蛋白复合物的支架。在实验上研究国内流离失所者的挑战来自其无序的性质。核磁共振(NMR),圆二色性,小角X射线散射和单分子Fster共振能量转移(FRET)可以提供IDP的局部结构信息和整体尺寸,但很少提供整体的统一图景蛋白。为了了解IDP的构象动力学及其结构整体如何识别多个结合配偶体和小分子抑制剂,在实验结构数据的指导下,在计算机上利用了基于知识和基于物理的采样技术。但是,要对IDP构象集合进行有效采样,就需要遍历IDP能量格局中的众多自由度,以及准确建模蛋白质和溶剂相互作用的力场。在本文中,我们概述了用于研究IDP结构和动力学的计算方法的当前状态,并讨论了该领域面临的主要挑战。

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