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Recent Structural and Computational Insights into Conformational Diseases

机译:对构象性疾病的最新结构和计算见解

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Protein aggregation correlates with the development of several deleterious human disorders such as Alzheimer's disease, Parkinson's disease, prion-associated transmissible spongiform encephalopathies and type II diabetes. The polypeptides involved in these disorders may be globular proteins with a defined 3D-structure or natively unfolded proteins in their soluble conformations. In either case, proteins associated with these pathogeneses all aggregate into amyloid fibrils sharing a common structure, in which β-strands of polypeptide chains are perpendicular to the fibril axis. Because of the prominence of amyloid deposits in many of these diseases, much effort has gone into elucidating the structural basis of protein aggregation. A number of recent experimental and theoretical studies have significantly increased our understanding of the process. On the one hand, solid-state NMR, X-ray crystallography and single molecule methods have provided us with the first high-resolution 3D structures of amyloids, showing that they exhibit conformational plasticity and are able to adopt different stable tertiary folds. On the other hand, several computational approaches have identified regions prone to aggregation in disease-linked polypeptides, predicted the differential aggregation propensities of their genetic variants and simulated the early, crucial steps in protein self-assembly. This review summarizes these findings and their therapeutic relevance, as by uncovering specific structural or sequential targets they may provide us with a means to tackle the debilitating diseases linked to protein aggregation.
机译:蛋白质聚集与几种有害的人类疾病的发展有关,例如阿尔茨海默氏病,帕金森氏病,病毒相关的可传播海绵状脑病和II型糖尿病。与这些疾病有关的多肽可以是具有定义的3D结构的球状蛋白,也可以是其可溶性构象的天然未折叠蛋白。在这两种情况下,与这些病原体相关的蛋白质都聚集成具有共同结构的淀粉样蛋白原纤维,其中多肽链的β链垂直于原纤维轴。由于淀粉样沉积物在许多此类疾病中的突出地位,已为阐明蛋白质聚集的结构基础付出了很多努力。最近的许多实验和理论研究极大地增加了我们对该过程的了解。一方面,固态NMR,X射线晶体学和单分子方法为我们提供了淀粉样蛋白的第一个高分辨率3D结构,表明它们表现出构象可塑性并且能够采用不同的稳定三级折叠。另一方面,几种计算方法已经确定了疾病相关多肽中易于聚集的区域,预测了其遗传变异的差异聚集倾向,并模拟了蛋白质自组装的早期关键步骤。这篇综述总结了这些发现及其治疗意义,因为它们揭示了特定的结构或顺序靶标,可能为我们提供解决与蛋白质聚集有关的衰弱性疾病的方法。

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