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运用分子动力学模拟和分子力学泊松-玻尔兹曼表面等势自由能计算方法探究淀粉样β原纤维的分子间相互作用。

Exploring the inter-molecular interactions in amyloid-β protofibril with molecular dynamics simulations and molecular mechanics Poisson-Boltzmann surface area free energy calculations.

机构信息

Department of Biochemical Engineering and Key Laboratory of Systems Bioengineering of the Ministry of Education, School of Chemical Engineering and Technology, Tianjin University, Tianjin 300072, China.

出版信息

J Chem Phys. 2012 Apr 14;136(14):145101. doi: 10.1063/1.3702195.

Abstract

Aggregation of amyloid-β (Aβ) peptides correlates with the pathology of Alzheimer's disease. However, the inter-molecular interactions between Aβ protofibril remain elusive. Herein, molecular mechanics Poisson-Boltzmann surface area analysis based on all-atom molecular dynamics simulations was performed to study the inter-molecular interactions in Aβ(17-42) protofibril. It is found that the nonpolar interactions are the important forces to stabilize the Aβ(17-42) protofibril, while electrostatic interactions play a minor role. Through free energy decomposition, 18 residues of the Aβ(17-42) are identified to provide interaction energy lower than -2.5 kcal/mol. The nonpolar interactions are mainly provided by the main chain of the peptide and the side chains of nine hydrophobic residues (Leu17, Phe19, Phe20, Leu32, Leu34, Met35, Val36, Val40, and Ile41). However, the electrostatic interactions are mainly supplied by the main chains of six hydrophobic residues (Phe19, Phe20, Val24, Met35, Val36, and Val40) and the side chains of the charged residues (Glu22, Asp23, and Lys28). In the electrostatic interactions, the overwhelming majority of hydrogen bonds involve the main chains of Aβ as well as the guanidinium group of the charged side chain of Lys28. The work has thus elucidated the molecular mechanism of the inter-molecular interactions between Aβ monomers in Aβ(17-42) protofibril, and the findings are considered critical for exploring effective agents for the inhibition of Aβ aggregation.

摘要

淀粉样蛋白-β (Aβ) 肽的聚集与阿尔茨海默病的病理学有关。然而,Aβ原纤维之间的分子间相互作用仍然难以捉摸。在此,通过基于全原子分子动力学模拟的分子力学泊松-玻尔兹曼表面区域分析,研究了 Aβ(17-42)原纤维中的分子间相互作用。结果发现,非极性相互作用是稳定 Aβ(17-42)原纤维的重要力,而静电相互作用则起次要作用。通过自由能分解,确定了 Aβ(17-42)中的 18 个残基提供的相互作用能低于-2.5 kcal/mol。非极性相互作用主要由肽的主链和 9 个疏水性残基(Leu17、Phe19、Phe20、Leu32、Leu34、Met35、Val36、Val40 和 Ile41)的侧链提供。然而,静电相互作用主要由 6 个疏水性残基(Phe19、Phe20、Val24、Met35、Val36 和 Val40)的主链和带电荷侧链残基(Glu22、Asp23 和 Lys28)提供。在静电相互作用中,绝大多数氢键涉及 Aβ的主链以及 Lys28 的带电荷侧链的胍基。该工作阐明了 Aβ(17-42)原纤维中 Aβ单体之间分子间相互作用的分子机制,研究结果对于探索抑制 Aβ聚集的有效药物具有重要意义。

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