多肽材料系统的设计和可持续性

IF 79.8 1区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Sarah K. Yorke, Zhenze Yang, Elizabeth G. Wiita, Ayaka Kamada, Tuomas P. J. Knowles, Markus J. Buehler
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引用次数: 0

摘要

自然界中一些性能最高的材料,包括蜘蛛丝和胶原蛋白,都是通过蛋白质自组装形成的。这些天然材料在温和的水条件下结合了功能、性能和组装,激发了一代技术上有用的生物材料,这些材料使用天然蛋白质作为分子构建块。从油基原料向可再生材料的转变加速了对塑料替代品的寻找,并刺激了两大类丰富的天然聚合物——蛋白质和多糖的研究。虽然多糖已经用于从包装到结构应用的各个领域,但蛋白质的独特性质尚未被充分利用于可再生材料。在过去的15年里,由于对多肽自组装的基本理解,新兴的计算方法,如人工智能,原料和材料处理,蛋白质系统的高性能应用前景得到了突出的发展。在这篇综述中,我们重点介绍了这一领域的发展,并对这类重要分子在基础材料科学和可持续性方面的潜力进行了展望。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Design and sustainability of polypeptide material systems

Design and sustainability of polypeptide material systems

Some of the highest-performance materials in nature, including spider silk and collagen, are formed through protein self-assembly. These natural materials, which combine function, performance and assembly under mild aqueous conditions, have inspired a generation of technologically useful biomaterials that use natural proteins as the molecular building blocks. The shift from oil-based feedstocks towards renewable materials has accelerated the search for plastic replacements and has stimulated work in the two major classes of abundant natural polymers, proteins and polysaccharides. Whereas polysaccharides are already used in areas from packaging to structural applications, the unique properties of proteins have not yet been fully harnessed for renewable materials. Advances over the past 15 years have highlighted the promise of protein systems for high-performance applications, enabled by a fundamental understanding of polypeptide self-assembly, emerging computational methods such as artificial intelligence, feedstocks, and materials processing. In this Review, we highlight developments in this area and provide a perspective on the potential of this important class of molecules in both fundamental materials science and sustainability.

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来源期刊
Nature Reviews Materials
Nature Reviews Materials Materials Science-Biomaterials
CiteScore
119.40
自引率
0.40%
发文量
107
期刊介绍: Nature Reviews Materials is an online-only journal that is published weekly. It covers a wide range of scientific disciplines within materials science. The journal includes Reviews, Perspectives, and Comments. Nature Reviews Materials focuses on various aspects of materials science, including the making, measuring, modelling, and manufacturing of materials. It examines the entire process of materials science, from laboratory discovery to the development of functional devices.
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