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硫氧还蛋白超家族的功能宏基因组学。

Functional metagenomics of the thioredoxin superfamily.

机构信息

Institute of Biochemistry and Pathobiochemistry - Microbial Biochemistry, Ruhr-Universität Bochum, Bochum, Germany.

Institute of Biochemistry and Pathobiochemistry - Microbial Biochemistry, Ruhr-Universität Bochum, Bochum, Germany; Protein Expression and Modification Division, New England Biolabs, Ipswich, Massachusetts, USA.

出版信息

J Biol Chem. 2021 Jan-Jun;296:100247. doi: 10.1074/jbc.RA120.016350. Epub 2021 Jan 14.

Abstract

Environmental sequence data of microbial communities now makes up the majority of public genomic information. The assignment of a function to sequences from these metagenomic sources is challenging because organisms associated with the data are often uncharacterized and not cultivable. To overcome these challenges, we created a rationally designed expression library of metagenomic proteins covering the sequence space of the thioredoxin superfamily. This library of 100 individual proteins represents more than 22,000 thioredoxins found in the Global Ocean Sampling data set. We screened this library for the functional rescue of Escherichia coli mutants lacking the thioredoxin-type reductase (ΔtrxA), isomerase (ΔdsbC), or oxidase (ΔdsbA). We were able to assign functions to more than a quarter of our representative proteins. The in vivo function of a given representative could not be predicted by phylogenetic relation but did correlate with the predicted isoelectric surface potential of the protein. Selected proteins were then purified, and we determined their activity using a standard insulin reduction assay and measured their redox potential. An unexpected gel shift of protein E5 during the redox potential determination revealed a redox cycle distinct from that of typical thioredoxin-superfamily oxidoreductases. Instead of the intramolecular disulfide bond formation typical for thioredoxins, this protein forms an intermolecular disulfide between the attacking cysteines of two separate subunits during its catalytic cycle. Our functional metagenomic approach proved not only useful to assign in vivo functions to representatives of thousands of proteins but also uncovered a novel reaction mechanism in a seemingly well-known protein superfamily.

摘要

微生物群落的环境序列数据现在构成了大多数公共基因组信息。由于与这些宏基因组来源相关的生物通常未被描述且不可培养,因此将功能分配给这些序列具有挑战性。为了克服这些挑战,我们创建了一个经过合理设计的宏基因组蛋白表达文库,涵盖了硫氧还蛋白超家族的序列空间。该文库由 100 个独立的蛋白组成,代表了全球海洋采样数据集 22000 多个硫氧还蛋白。我们从这个文库中筛选出能够功能性拯救缺乏硫氧还蛋白型还原酶(ΔtrxA)、异构酶(ΔdsbC)或氧化酶(ΔdsbA)的大肠杆菌突变体的蛋白。我们能够为超过四分之一的代表性蛋白分配功能。给定代表的体内功能不能通过系统发育关系来预测,但与蛋白质的预测等电表面电势相关。然后纯化选定的蛋白质,并使用标准的胰岛素还原测定法测定其活性,测量其氧化还原电势。在确定氧化还原电势的过程中,蛋白质 E5 的意外凝胶移位揭示了一种与典型的硫氧还蛋白超家族氧化还原酶不同的氧化还原循环。该蛋白在其催化循环中形成两个独立亚基的攻击半胱氨酸之间的分子间二硫键,而不是典型的硫氧还蛋白中的分子内二硫键形成。我们的功能宏基因组方法不仅证明了将数千种蛋白质的代表物的体内功能分配有用,而且还揭示了一个看似众所周知的蛋白质超家族中的一种新的反应机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2fef/7949104/5f380e5deafb/gr1.jpg

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