利用生物制造的蛋白质设计先进的纤维素,提高三电性能

Khushank Singhal, Ramiz Boy, Abu Musa Abdullah, Tarek Mazeed, Melik C. Demirel
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引用次数: 0

摘要

生物聚合物(如多糖和多肽)可提供可再生、可生物降解的解决方案,实现更可持续的未来。这些聚合物由氨基酸和聚糖等天然结构单元组成,可确保其在生命周期结束时具有真正的环境效益。例如,纤维素是一种高度可持续的材料,具有许多优良特性,包括可再生性、可生物降解性和多功能性。它可以以各种形式使用,如纺织品、包装材料和建筑绝缘材料。在此,我们受乌贼环齿(SRT)的启发,研究了通过混合或创建生物复合材料与生物制造蛋白生产的先进纤维素材料。生物制造的蛋白质可以大量合成,生产过程可控,可以进行修饰以产生理想的变体,而且其生产规模可以扩大或缩小。具体来说,我们设计的重组 SRT 蛋白具有高静电荷、诱导结晶性并提供极性羟基,从而增强纤维素材料的三电响应。蛋白质含量为 10%(重量比)时,三醋酸纤维和纤维素纤维混合物的三电位电压分别提高了 72-108% 和 49-57%。此外,在纤维素纤维上涂覆蛋白质以制造双复合纤维是一种非常有效的方法,可将三电性能提高一倍(200%)。这一发现对开发可持续三电材料和利用生物制造技术生产先进材料具有重要意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Engineering advanced cellulosics for enhanced triboelectric performance using biomanufactured proteins

Engineering advanced cellulosics for enhanced triboelectric performance using biomanufactured proteins
Biological polymers, such as polysaccharides and polypeptides, offer renewable and biodegradable solutions for a more sustainable future. These polymers comprise natural building blocks, such as amino acids and glycans, which ensure their true environmental benefits at the end of their lifecycle. For example, cellulose is a highly sustainable material with many excellent properties, including renewability, biodegradability, and versatility in its functionality. It can be used in various forms, such as textiles, packaging materials, and building insulation. Here, we studied advanced cellulosic materials produced by blending or creating bi-composites with biomanufactured proteins inspired by squid ring teeth (SRT). Biomanufactured proteins can be synthesized in larger quantities, have a controlled production process, be modified to create desirable variants, and their production can be scaled up or down. Specifically, we engineered recombinant SRT proteins to have high electrostatic charge, induce crystallinity, and provide polar hydroxyl groups, which enhances cellulosic materials’ triboelectric response. The triboelectric voltage of blend triacetate and cellulose fibers increased by 72–108% and 49–57%, respectively, with a protein content of 10% wt. Furthermore, coating proteins on cellulosic fibers to create bi-composite fibers is a highly effective method for doubling (200%) the triboelectric performance. This finding has important implications for developing sustainable triboelectric materials and producing advanced materials using biomanufacturing.
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