蛋白质材料如何平衡强度、坚固性和适应性。

Hfsp Journal Pub Date : 2010-02-01 Epub Date: 2010-01-14 DOI:10.2976/1.3267779
Markus J Buehler, Yu Ching Yung
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引用次数: 0

摘要

蛋白质是头发、皮肤、骨骼、蜘蛛丝或细胞等多种生物材料的基础,在为生物系统提供关键功能方面发挥着重要作用。本文的重点是讨论蛋白质材料如何能够平衡多种看似不相容的特性,如强度、坚固性和适应性。为了说明这一点,我们回顾了自下而上的材料组学研究,重点是蛋白质材料在从纳米到宏观等多个尺度上的机械行为。我们以基于α-螺旋的中间丝蛋白为模型系统,解释为什么利用分层结构特征对其兼具强度、稳健性和适应性的能力至关重要。实验研究表明,血管生成(新血管的生长)被激活,并以此为例说明生物组织结构的适应性是如何通过基因表达的变化来实现的,而基因表达的变化会导致物质结构的改变。我们根据蛋白质材料结构组成的普遍性和多样性分析了这些概念,并结合控制其纳米级结构的潜在基本进化原理讨论了这些发现。最后,我们将讨论生物学中的多尺度科学和新材料设计。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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How protein materials balance strength, robustness, and adaptability.

Proteins form the basis of a wide range of biological materials such as hair, skin, bone, spider silk, or cells, which play an important role in providing key functions to biological systems. The focus of this article is to discuss how protein materials are capable of balancing multiple, seemingly incompatible properties such as strength, robustness, and adaptability. To illustrate this, we review bottom-up materiomics studies focused on the mechanical behavior of protein materials at multiple scales, from nano to macro. We focus on alpha-helix based intermediate filament proteins as a model system to explain why the utilization of hierarchical structural features is vital to their ability to combine strength, robustness, and adaptability. Experimental studies demonstrating the activation of angiogenesis, the growth of new blood vessels, are presented as an example of how adaptability of structure in biological tissue is achieved through changes in gene expression that result in an altered material structure. We analyze the concepts in light of the universality and diversity of the structural makeup of protein materials and discuss the findings in the context of potential fundamental evolutionary principles that control their nanoscale structure. We conclude with a discussion of multiscale science in biology and de novo materials design.

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Hfsp Journal
Hfsp Journal 综合性期刊-综合性期刊
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