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在纳米机械拉伸下直接观察淀粉样蛋白成核。

Direct observation of amyloid nucleation under nanomechanical stretching.

机构信息

Department of Materials Science and Engineering, ‡Fischell Department of Bioengineering, ¶Department of Mechanical Engineering, University of Maryland , College Park, Maryland 20742, United States.

出版信息

ACS Nano. 2013 Sep 24;7(9):7734-43. doi: 10.1021/nn402322k. Epub 2013 Sep 3.

Abstract

Self-assembly of amyloid nanofiber is associated with both functional biological and pathological processes such as those in neurodegenerative diseases. Despite intensive studies, the stochastic nature of the process has made it difficult to elucidate a molecular mechanism for the key amyloid nucleation event. Here we investigated nucleation of the silk-elastin-like peptide (SELP) amyloid using time-lapse lateral force microscopy (LFM). By repeated scanning of a single line on a SELP-coated mica surface, we observed a sudden stepwise height increase. This corresponds to nucleation of an amyloid fiber, which subsequently grew perpendicular to the scanning direction. The lateral force profiles followed either a worm-like chain model or an exponential function, suggesting that the atomic force microscopy (AFM) tip stretches a single or multiple SELP molecules along the scanning direction. The probability of nucleation correlated with the maximum stretching force and extension, implying that stretching of SELP molecules is a key molecular event for amyloid nucleation. The mechanically induced nucleation allows for positional and directional control of amyloid assembly in vitro, which we demonstrate by generating single nanofibers at predetermined nucleation sites.

摘要

淀粉样纤维的自组装与功能生物和病理过程有关,如神经退行性疾病。尽管进行了深入的研究,但该过程的随机性使得阐明关键淀粉样核形成事件的分子机制变得困难。在这里,我们使用延时横向力显微镜(LFM)研究了丝弹性蛋白样肽(SELP)淀粉样的成核。通过在 SELP 涂层云母表面上反复扫描单条线,我们观察到突然的逐步高度增加。这对应于淀粉样纤维的成核,随后该纤维垂直于扫描方向生长。横向力曲线遵循蠕虫状链模型或指数函数,表明原子力显微镜(AFM)针尖沿扫描方向拉伸单个或多个 SELP 分子。成核的概率与最大拉伸力和延伸度相关,这表明 SELP 分子的拉伸是淀粉样核形成的关键分子事件。机械诱导的成核允许在体外对淀粉样组装进行位置和方向控制,我们通过在预定成核点生成单根纳米纤维证明了这一点。

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