Protein Fibrillar Nanopolymers: Molecular-Level Insights into Their Structural, Physical and Mechanical Properties

V. Trusova
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引用次数: 3

Abstract

Amyloid fibrils represent a generic class of mechanically strong and stable biomaterials with extremely advantageous properties. Although amyloids were initially associated only with severe neurological disorders, the role of these structures nowadays is shifting from health debilitating to highly beneficial both in biomedical and technological aspects. Intensive involvement of fibrillar assemblies into the wide range of pathogenic and functional processes strongly necessitate the molecular level characterization of the structural, physical and elastic features of protein nanofibrils. In the present contribution, we made an attempt to highlight the up-to-date progress in the understanding of amyloid properties from the polymer physics standpoint. The fundamental insights into protein fibril behavior are essential not only for development of therapeutic strategies to combat the protein misfolding disorders but also for rational and precise design of novel biodegradable protein-based nanopolymers.
蛋白纤维纳米聚合物:分子水平上对其结构、物理和机械性能的洞察
淀粉样原纤维是一类机械强度高且稳定的生物材料,具有非常有利的性能。虽然淀粉样蛋白最初只与严重的神经系统疾病有关,但如今这些结构的作用正在从使健康衰弱转变为在生物医学和技术方面非常有益。纤维组装在广泛的致病和功能过程中的密集参与强烈需要对蛋白质纳米原纤维的结构、物理和弹性特征进行分子水平的表征。在目前的贡献中,我们试图强调从聚合物物理学的角度理解淀粉样蛋白性质的最新进展。对蛋白质原纤维行为的基本认识不仅对开发对抗蛋白质错误折叠障碍的治疗策略至关重要,而且对合理和精确地设计新型可生物降解的蛋白质纳米聚合物也至关重要。
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