噬菌体展示
肽库
肽
胰岛素
蛋白质工程
胰岛素受体
生物化学
计算生物学
化学
噬菌体
天然化学连接
分子工程
表位
胰岛素受体底物
组合化学
生物
肽序列
酶
噬菌体
抗原
胰岛素抵抗
半胱氨酸
遗传学
有机化学
大肠杆菌
内分泌学
基因
作者
Yi Wolf Zhang,Nai-Pin Lin,Xu Guo,Nicolas Szabo‐Fresnais,P. Ortoleva,Danny Hung‐Chieh Chou
标识
DOI:10.1021/acschembio.3c00685
摘要
Chemical and enzymatic modifications of peptide-displayed libraries have been successfully employed to expand the phage display library. However, the requirement of specific epitopes and scaffolds has limited the scope of protein engineering using phage display. In this study, we present a novel approach utilizing omniligase-1-mediated selective and specific ligation on the phage pIII protein, offering a high conversion rate and compatibility with commercially available phage libraries. We applied this method to perform high-throughput engineering of insulin analogues with randomized B chain C-terminal regions. Insulin analogues with different B chain C-terminal segments were selected and exhibited biological activity equivalent to that of human insulin. Molecular dynamics studies of insulin analogues revealed a novel interaction between the insulin B27 residue and insulin receptor L1 domain. In summary, our findings highlight the potential of omniligase-1-mediated phage display in the development and screening of disulfide-rich peptides and proteins. This approach holds promise for the creation of novel insulin analogues with enhanced therapeutic properties and exhibits potential for the development of other therapeutic compounds.
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