Lin Baoyang, Xiong Yongji, Chen Huiyu, Wei Shengnan, Ren Pengpeng, Cheng Cheng, He Bingfang
College of Biotechnology and Pharmaceutical Engineering, Nanjing Tech University, Nanjing 211800, Jiangsu, China.
School of Pharmaceutical Science, Nanjing Tech University, Nanjing 211800, Jiangsu, China.
Sheng Wu Gong Cheng Xue Bao. 2024 Mar 25;40(3):687-704. doi: 10.13345/j.cjb.230444.
Spider silk is a natural fiber known as "biosteel" with the strongest composite performance, such as high tensile strength and toughness. It is also equipped with excellent biocompatibility and shape memory ability, thus shows great potential in many fields such as biomedicine and tissue engineering. Spider silk is composed of macromolecular spidroin with rich structural diversity. The characteristics of the primary structure of natural spidroin, such as the high repeatability of amino acids in the core repetitive region, the high content of specific amino acids, the large molecular weight, and the high GC content of the spidroin gene, have brought great difficulties in heterologous expression. This review discusses focuses on the relationship between the featured motifs of the microcrystalline region in the repetitive unit of spidroin and its structure, as well as the spinning performance and the heterologous expression. The optimization design for the sequence of spidroin combined with heterologous expression strategy has greatly promoted the development of the biosynthesis of spider silk proteins. This review may facilitate the rational design and efficient synthesis of recombinant spidroin.
蜘蛛丝是一种被称为“生物钢”的天然纤维,具有最强的复合性能,如高拉伸强度和韧性。它还具备优异的生物相容性和形状记忆能力,因此在生物医学和组织工程等许多领域展现出巨大潜力。蜘蛛丝由具有丰富结构多样性的大分子蛛丝蛋白组成。天然蛛丝蛋白一级结构的特点,如核心重复区域氨基酸的高重复性、特定氨基酸的高含量、大分子质量以及蛛丝蛋白基因的高GC含量,给异源表达带来了巨大困难。本综述重点讨论了蛛丝蛋白重复单元微晶区域的特征基序与其结构、纺丝性能以及异源表达之间的关系。结合异源表达策略对蛛丝蛋白序列进行优化设计,极大地推动了蜘蛛丝蛋白生物合成的发展。本综述可能有助于重组蛛丝蛋白的合理设计和高效合成。