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利用基因编码的 SpyTag-SpyCatcher 化学控制生物大分子拓扑结构。

Controlling macromolecular topology with genetically encoded SpyTag-SpyCatcher chemistry.

机构信息

Division of Chemistry and Chemical Engineering, California Institute of Technology , Pasadena, California 91125, United States.

出版信息

J Am Chem Soc. 2013 Sep 18;135(37):13988-97. doi: 10.1021/ja4076452. Epub 2013 Sep 9.

DOI:10.1021/ja4076452
PMID:23964715
Abstract

Control of molecular topology constitutes a fundamental challenge in macromolecular chemistry. Here we describe the synthesis and characterization of artificial elastin-like proteins (ELPs) with unconventional nonlinear topologies including circular, tadpole, star, and H-shaped proteins using genetically encoded SpyTag-SpyCatcher chemistry. SpyTag is a short polypeptide that binds its protein partner SpyCatcher and forms isopeptide bonds under physiological conditions. Sequences encoding SpyTag and SpyCatcher can be strategically placed into ELP genes to direct post-translational topological modification in situ. Placement of SpyTag at the N-terminus and SpyCatcher at the C-terminus directs formation of circular ELPs. Induction of expression at 16 °C with 10 μM IPTG yields 80% monomeric cyclic protein. When SpyTag is placed in the middle of the chain, it exhibits an even stronger tendency toward cyclization, yielding up to 94% monomeric tadpole proteins. Telechelic ELPs containing either SpyTag or SpyCatcher can be expressed, purified, and then coupled spontaneously upon mixing in vitro. Block proteins, 3-arm or 4-arm star proteins, and H-shaped proteins have been prepared, with the folded CnaB2 domain that results from the SpyTag-SpyCatcher reaction as the molecular core or branch junction. The modular character of the SpyTag-SpyCatcher strategy should make it useful for preparing nonlinear macromolecules of diverse sequence and structure.

摘要

控制分子拓扑结构是高分子化学的一个基本挑战。在这里,我们描述了使用遗传编码的 SpyTag-SpyCatcher 化学合成具有非常规非线性拓扑结构的人工弹性蛋白样蛋白(ELP)的方法,包括圆形、蝌蚪形、星形和 H 形蛋白。SpyTag 是一种短多肽,在生理条件下与它的蛋白质伴侣 SpyCatcher 结合并形成异肽键。SpyTag 和 SpyCatcher 的编码序列可以被策略性地放置在 ELP 基因中,以指导原位的翻译后拓扑修饰。将 SpyTag 放在 N 端,SpyCatcher 放在 C 端,可指导形成环状 ELP。在 16°C 下用 10 μM IPTG 诱导表达,可得到 80%的单体环状蛋白。当 SpyTag 放在链中间时,它表现出更强的环化趋势,可得到高达 94%的单体蝌蚪蛋白。含有 SpyTag 或 SpyCatcher 的末端封闭弹性蛋白可以表达、纯化,然后在体外混合时自动偶联。已经制备了封端弹性蛋白、3 臂或 4 臂星形蛋白和 H 形蛋白,其中由 SpyTag-SpyCatcher 反应产生的折叠 CnaB2 结构域作为分子核心或分支连接点。SpyTag-SpyCatcher 策略的模块化特征应该使其可用于制备具有不同序列和结构的非线性大分子。

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