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稳定α-突触核蛋白原纤维结构的分子相互作用研究:一项计算机模拟研究

Investigation on the Molecular Interactions Stabilizing the Structure of α-synuclein Fibril: An In silico Study.

作者信息

Sanjeev Airy, Mattaparthi Venkata S K

机构信息

Molecular Modelling and Simulation Laboratory, Department of Molecular Biology and Biotechnology, Tezpur University, Tezpur-784 028, Assam. India.

出版信息

Cent Nerv Syst Agents Med Chem. 2017;17(3):209-218. doi: 10.2174/1871524917666170427152849.

Abstract

BACKGROUND

Amyloid fibrils represent stable form of many misfolded proteins associated with numerous diseases like Parkinson's Disease (PD), Type II diabetes and Alzheimer's disease (AD). α-synuclein protein is the principal constituent of Lewy bodies that are considered to be pathological hallmark of PD. Recently, a high resolution structure of α-synuclein protein that stacks together forming fibrils in brains of PD patients were identified. What structural features drive pathology of PD can now be possibly answered from the fibril structure of protein.

OBJECTIVES

To understand the molecular interactions those are responsible for the stability of the α- synuclein fibril structure.

METHODS

To study the molecular interactions stabilizing the α-synuclein fibril, we have used a high resolution amyloid fibril structure (PDB ID 2N0A). The molecular interactions in fibril structure were studied using PDBSum server. We then looked into the destabilization of α-synuclein fibril by disrupting the salt-bridge holding the strands and probable methods to decompose fibril into structurally distinct units using Top-domain web-server. The effect of salt-bridges on the stability of the fibril structure was studied by mutating one of the residues involved in the formation of salt-bridge using molecular dynamics simulation.

RESULTS

Our results indicate a finite salt-bridge (E46-K80) is crucial for stability of protofibril. Besides, we observed hydrogen bonds and non-bonded contacts involved in fibril stabilization. We noticed α-synuclein dimer predominantly exists in conformations distinct from fibril.

CONCLUSION

We characterized the salient molecular interactions in α-synuclein fibril and these findings may be useful to design potential inhibitors for the treatment of PD.

摘要

背景

淀粉样纤维是许多错误折叠蛋白的稳定形式,与帕金森病(PD)、II型糖尿病和阿尔茨海默病(AD)等多种疾病相关。α-突触核蛋白是路易小体的主要成分,路易小体被认为是PD的病理标志。最近,在PD患者大脑中发现了α-突触核蛋白堆叠形成纤维的高分辨率结构。现在,从该蛋白的纤维结构中或许可以找到驱动PD病理的结构特征。

目的

了解负责α-突触核蛋白纤维结构稳定性的分子相互作用。

方法

为研究稳定α-突触核蛋白纤维的分子相互作用,我们使用了高分辨率淀粉样纤维结构(PDB ID 2N0A)。使用PDBSum服务器研究纤维结构中的分子相互作用。然后,我们通过破坏连接链的盐桥来研究α-突触核蛋白纤维的去稳定化,以及使用Top-domain网络服务器将纤维分解为结构不同单元的可能方法。通过使用分子动力学模拟突变参与盐桥形成的一个残基,研究盐桥对纤维结构稳定性的影响。

结果

我们的结果表明,有限的盐桥(E46-K80)对原纤维的稳定性至关重要。此外,我们观察到氢键和非键接触参与了纤维的稳定。我们注意到α-突触核蛋白二聚体主要以与纤维不同的构象存在。

结论

我们表征了α-突触核蛋白纤维中显著的分子相互作用,这些发现可能有助于设计治疗PD的潜在抑制剂。

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