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Mechanical properties of amyloid-like fibrils defined by secondary structures

机译:amyloid-like纤维的力学性能由二级结构定义

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摘要

Amyloid and amyloid-like fibrils represent a generic class of highly ordered nanostructures that are implicated in some of the most fatal neurodegenerative diseases. On the other hand, amyloids, by possessing outstanding mechanical robustness, have also been successfully employed as functional biomaterials. For these reasons, physical and chemical factors driving fibril self-assembly and morphology are extensively studied - among these parameters, the secondary structures and the pH have been revealed to be crucial, since a variation in pH changes the fibril morphology and net chirality during protein aggregation. It is important to quantify the mechanical properties of these fibrils in order to help the design of effective strategies for treating diseases related to the presence of amyloid fibrils. In this work, we show that by changing pH the mechanical properties of amyloid-like fibrils vary as well. In particular, we reveal that these mechanical properties are strongly related to the content of secondary structures. We analysed and estimated the Young's modulus (E) by comparing the persistence length (L-p) - measured from the observation of TEM images by using statistical mechanics arguments - with the mechanical information provided by peak force quantitative nanomechanical property mapping (PF-QNM). The secondary structure content and the chirality are investigated by means of synchrotron radiation circular dichroism (SR-CD). Results arising from this study could be fruitfully used as a protocol to investigate other medical or engineering relevant peptide fibrils.
机译:淀粉状蛋白amyloid-like代表原纤维泛型类的高度有序的纳米结构中涉及的一些最致命的神经退行性疾病。淀粉,具有杰出的机械健壮性也被成功地使用功能性生物材料。物理和化学因素推动原纤维自组装和形态是广泛的研究了——在这些参数中,次要的结构和pH值显示至关重要的,因为pH值的变化改变了原纤维形态和净中手性蛋白质聚合。这些纤维的力学性能为了帮助有效的设计策略治疗相关疾病的存在淀粉样原纤维。改变pH值的机械性能amyloid-like纤维不同。我们发现这些力学性能次要的内容紧密相关结构。模量(E)通过比较持久长度(帮)测量TEM观察的——图像通过使用统计力学参数机械信息提供的峰值力定量纳米机械属性映射(PF-QNM)。和手性是通过调查同步加速器辐射圆二色性(SR-CD)。这项研究的结果产生肥沃地用作协议进行调查其他医学或工程相关的肽原纤维。

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