Grasso Gianvito, Rebella Martina, Morbiducci Umberto, Tuszynski Jack A, Danani Andrea, Deriu Marco A
Istituto Dalle Molle di studi sull'Intelligenza Artificiale, Scuola Universitaria Professionale della Svizzera Italiana, Università della Svizzera Italiana, Manno, Switzerland.
Polito BioMEDLab, Department of Mechanical and Aerospace Engineering, Politecnico di Torino, Turin, Italy.
Front Bioeng Biotechnol. 2019 Apr 24;7:83. doi: 10.3389/fbioe.2019.00083. eCollection 2019.
Alzheimer's Disease (AD) is related with the abnormal aggregation of amyloid β-peptides Aβ and Aβ, the latter having a polymorphic character which gives rise to U- or S-shaped fibrils. Elucidating the role played by the nanoscale-material architecture on the amyloid fibril stability is a crucial breakthrough to better understand the pathological nature of amyloid structures and to support the rational design of bio-inspired materials. The computational study here presented highlights the superior mechanical behavior of the S-architecture, characterized by a Young's modulus markedly higher than the U-shaped architecture. The S-architecture showed a higher mechanical resistance to the enforced deformation along the fibril axis, consequence of a better interchain hydrogen bonds' distribution. In conclusion, this study, focusing the attention on the pivotal multiscale relationship between molecular phenomena and material properties, suggests the S-shaped Aβ species as a target of election in computational screen/design/optimization of effective aggregation modulators.
阿尔茨海默病(AD)与淀粉样β肽Aβ的异常聚集有关,后者具有多态性,可形成U形或S形纤维。阐明纳米级材料结构对淀粉样纤维稳定性的作用,是更好地理解淀粉样结构的病理本质以及支持生物启发材料合理设计的关键突破。本文提出的计算研究突出了S形结构卓越的力学性能,其特征是杨氏模量明显高于U形结构。S形结构对沿纤维轴方向的强制变形表现出更高的机械抗性,这是链间氢键分布更好的结果。总之,这项研究聚焦于分子现象与材料特性之间关键的多尺度关系,表明S形Aβ物种是有效聚集调节剂的计算筛选/设计/优化中的首选目标。