委内瑞拉链霉菌 ATCC 15439 整个 CYPome 和 Fdxome 的功能分析

Shuai Li , Zhong Li , Guoqiang Zhang , Vlada B. Urlacher , Li Ma , Shengying Li
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摘要

细胞色素 P450 酶(CYPs 或 P450s)和铁氧还蛋白(Fdxs)广泛分布于生命的各个领域。细菌的 P450s 能够催化各种氧化反应,通常由 Fdxs 提供两个电子。特别是在链霉菌(Streptomyces)中,有丰富的 P450s,它们在生物活性代谢物的生物合成能力方面表现突出,在异生物代谢方面具有巨大潜力。然而,迄今为止还没有对任何链霉菌株的整个细胞色素 P450 互补体(CYPome)和铁氧还蛋白互补体(Fdxome)的生理功能进行过系统研究,这在微生物功能基因组学方面留下了巨大的知识空白。在此,我们通过研究单个和连续的 P450 缺失突变体、单个 P450 过表达突变体以及 Fdx 基因缺失或抑制突变体,对委内瑞拉链霉菌 ATCC 15439 的整个 CYPome 和 Fdxome 进行了功能分析。一个前所未有的 P450 缺失突变株的构建表明,没有一个 P450 基因是委内瑞拉鼠维持其生存和正常形态所必需的。非看家基因Fdx1和看家基因Fdx3不仅共同支持原型P450酶PikC的细胞活性,还发挥着重要的调控功能。这些发现极大地促进了人们对 P450s 和 Fdxs 本身功能及其细胞相互作用的理解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Functional analysis of the whole CYPome and Fdxome of Streptomyces venezuelae ATCC 15439

Cytochrome P450 enzymes (CYPs or P450s) and ferredoxins (Fdxs) are ubiquitously distributed in all domains of life. Bacterial P450s are capable of catalyzing various oxidative reactions with two electrons usually donated by Fdxs. Particularly in Streptomyces, there are abundant P450s that have exhibited outstanding biosynthetic capacity of bioactive metabolites and great potential for xenobiotic metabolisms. However, no systematic study has been conducted on physiological functions of the whole cytochrome P450 complement (CYPome) and ferredoxin complement (Fdxome) of any Streptomyces strain to date, leaving a significant knowledge gap in microbial functional genomics. Herein, we functionally analyze the whole CYPome and Fdxome of Streptomyces venezuelae ATCC 15439 by investigating groups of single and sequential P450 deletion mutants, single P450 overexpression mutants, and Fdx gene deletion or repression mutants. Construction of an unprecedented P450-null mutant strain indicates that none of P450 genes are essential for S. venezuelae in maintaining its survival and normal morphology. The non-housekeeping Fdx1 and housekeeping Fdx3 not only jointly support the cellular activity of the prototypic P450 enzyme PikC, but also play significant regulatory functions. These findings significantly advance the understandings of the native functionality of P450s and Fdxs as well as their cellular interactions.

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