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多种蛋白质组装由金属和螯合氨基酸驱动,具有选择性和可调性。

Diverse protein assembly driven by metal and chelating amino acids with selectivity and tunability.

机构信息

Department of Chemistry, College of Natural Sciences, Seoul National University, Seoul, 08826, Republic of Korea.

出版信息

Nat Commun. 2019 Dec 5;10(1):5545. doi: 10.1038/s41467-019-13491-w.

Abstract

Proteins are versatile natural building blocks with highly complex and multifunctional architectures, and self-assembled protein structures have been created by the introduction of covalent, noncovalent, or metal-coordination bonding. Here, we report the robust, selective, and reversible metal coordination properties of unnatural chelating amino acids as the sufficient and dominant driving force for diverse protein self-assembly. Bipyridine-alanine is genetically incorporated into a D homohexamer. Depending on the position of the unnatural amino acid, 1-directional, crystalline and noncrystalline 2-directional, combinatory, and hierarchical architectures are effectively created upon the addition of metal ions. The length and shape of the structures is tunable by altering conditions related to thermodynamics and kinetics of metal-coordination and subsequent reactions. The crystalline 1-directional and 2-directional biomaterials retain their native enzymatic activities with increased thermal stability, suggesting that introducing chelating ligands provides a specific chemical basis to synthesize diverse protein-based functional materials while retaining their native structures and functions.

摘要

蛋白质是具有高度复杂和多功能结构的通用天然建筑模块,通过引入共价键、非共价键或金属配位键,可以构建自组装蛋白质结构。在这里,我们报告了非天然螯合氨基酸的强大、选择性和可逆的金属配位特性,这是实现多种蛋白质自组装的充分且主要驱动力。将联吡啶-丙氨酸基因整合到 D 同六聚体中。根据非天然氨基酸的位置,在添加金属离子后,可有效构建 1 方向的结晶和非结晶 2 方向的、组合的和分层的结构。通过改变与金属配位和后续反应的热力学和动力学相关的条件,可以调节结构的长度和形状。结晶的 1 方向和 2 方向生物材料保留了其天然酶活性和增强的热稳定性,这表明引入螯合配体为合成具有不同功能的基于蛋白质的功能性材料提供了一个特定的化学基础,同时保留了它们的天然结构和功能。

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