多组学分析揭示了蜘蛛丝高性能的分子机制。

Yasuha Watanabe, Kazuharu Arakawa
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引用次数: 0

摘要

蜘蛛丝因其特殊的韧性、可再生性和可生物降解性被认为是有前途的下一代生物材料。传统观点认为蛛丝主要由两种类型的丝蛋白(蜘蛛蛋白)MaSp1和MaSp2组成,而多组学策略越来越多地揭示了复杂成分的包含赋予了材料更高的力学性能。在这篇综述中,我们重点介绍了最近的几项研究结果,这些研究报告了再现天然蜘蛛丝特性所必需的基本成分和机制。首先,我们讨论了MaSp3的发现,这是一种新发现的蜘蛛蛋白,除了之前了解的MaSp1和MaSp2外,它是蜘蛛丝组成的主要成分。此外,还探讨了蜘蛛丝构成元素(SpiCE)的作用,该元素存在于微量中,但已被发现可显着增加人造蜘蛛丝的拉伸强度。我们还深入研究了通过液-液相分离(LLPS)形成蜘蛛丝的分层结构的蜘蛛纤维形成过程。此外,通过对1000只蜘蛛的分析,我们回顾了氨基酸序列与韧性和超收缩等机械性能之间的相关性。总之,这些最新发现有助于全面了解蜘蛛丝具有高机械性能的机制,并有助于改进人造蜘蛛丝的生产。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Molecular mechanisms of the high performance of spider silks revealed through multi-omics analysis.

Molecular mechanisms of the high performance of spider silks revealed through multi-omics analysis.

Molecular mechanisms of the high performance of spider silks revealed through multi-omics analysis.

Molecular mechanisms of the high performance of spider silks revealed through multi-omics analysis.

Spider silk is considered a promising next-generation biomaterial due to its exceptional toughness, coupled with its renewability and biodegradability. Contrary to the conventional view that spider silk is mainly composed of two types of silk proteins (spidroins), MaSp1 and MaSp2, multi-omics strategies are increasingly revealing that the inclusion of complex components confers the higher mechanical properties to the material. In this review, we focus on several recent findings that report essential components and mechanisms that are necessary to reproduce the properties of natural spider silk. First, we discuss the discovery of MaSp3, a newly identified spidroin that is a major component in the composition of spider silk, in addition to the previously understood MaSp1 and MaSp2. Moreover, the role of the Spider-silk Constituting Element (SpiCE), which is present in trace amounts but has been found to significantly increase the tensile strength of artificial spider silk, is explored. We also delve into the process of spidroin fibril formation through liquid-liquid phase separation (LLPS) that forms the hierarchical structure of spider silk. In addition, we review the correlation between amino acid sequences and mechanical properties such as toughness and supercontraction, as revealed by an analysis of 1,000 spiders. In conclusion, these recent findings contribute to the comprehensive understanding of the mechanisms that give spider silk its high mechanical properties and help to improve artificial spider silk production.

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