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通过原子模拟探究朊病毒纤维的机械变形机制及性质

Mechanical Deformation Mechanisms and Properties of Prion Fibrils Probed by Atomistic Simulations.

作者信息

Choi Bumjoon, Kim Taehee, Ahn Eue Soo, Lee Sang Woo, Eom Kilho

机构信息

Department of Biomedical Engineering, Yonsei University, Wonju, 26493, Republic of Korea.

College of Sport Science, Sungkyunkwan University (SKKU), Suwon, 16419, Republic of Korea.

出版信息

Nanoscale Res Lett. 2017 Dec;12(1):228. doi: 10.1186/s11671-017-1966-3. Epub 2017 Mar 29.

Abstract

Prion fibrils, which are a hallmark for neurodegenerative diseases, have recently been found to exhibit the structural diversity that governs disease pathology. Despite our recent finding concerning the role of the disease-specific structure of prion fibrils in determining their elastic properties, the mechanical deformation mechanisms and fracture properties of prion fibrils depending on their structures have not been fully characterized. In this work, we have studied the tensile deformation mechanisms of prion and non-prion amyloid fibrils by using steered molecular dynamics simulations. Our simulation results show that the elastic modulus of prion fibril, which is formed based on left-handed β-helical structure, is larger than that of non-prion fibril constructed based on right-handed β-helix. However, the mechanical toughness of prion fibril is found to be less than that of non-prion fibril, which indicates that infectious prion fibril is more fragile than non-infectious (non-prion) fibril. Our study sheds light on the role of the helical structure of amyloid fibrils, which is related to prion infectivity, in determining their mechanical deformation mechanisms and properties.

摘要

朊病毒纤维是神经退行性疾病的一个标志,最近人们发现它呈现出决定疾病病理的结构多样性。尽管我们最近发现了朊病毒纤维的疾病特异性结构在决定其弹性特性方面的作用,但取决于其结构的朊病毒纤维的机械变形机制和断裂特性尚未得到充分表征。在这项工作中,我们通过使用引导分子动力学模拟研究了朊病毒和非朊病毒淀粉样纤维的拉伸变形机制。我们的模拟结果表明,基于左手β-螺旋结构形成的朊病毒纤维的弹性模量大于基于右手β-螺旋构建的非朊病毒纤维的弹性模量。然而,发现朊病毒纤维的机械韧性低于非朊病毒纤维,这表明感染性朊病毒纤维比非感染性(非朊病毒)纤维更脆弱。我们的研究揭示了与朊病毒感染性相关的淀粉样纤维螺旋结构在决定其机械变形机制和特性方面的作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d320/5371578/06f9933f6f88/11671_2017_1966_Fig1_HTML.jpg

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