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黄素依赖的胸苷酸合酶ThyX活性:对细菌叶酸循环的影响

Flavin-dependent thymidylate synthase ThyX activity: implications for the folate cycle in bacteria.

作者信息

Leduc Damien, Escartin Frédéric, Nijhout H Frederik, Reed Michael C, Liebl Ursula, Skouloubris Stéphane, Myllykallio Hannu

机构信息

INSERM Avenir group, Institut de Génétique et de Microbiologie, CNRS UMR8621, F-91405 Orsay, France.

出版信息

J Bacteriol. 2007 Dec;189(23):8537-45. doi: 10.1128/JB.01380-07. Epub 2007 Sep 21.

Abstract

Although flavin-dependent ThyX proteins show thymidylate synthase activity in vitro and functionally complement thyA defects in heterologous systems, direct proof of their cellular functions is missing. Using insertional mutagenesis of Rhodobacter capsulatus thyX, we constructed the first defined thyX inactivation mutant. Phenotypic analyses of the obtained mutant strain confirmed that R. capsulatus ThyX is required for de novo thymidylate synthesis. Full complementation of the R. capsulatus thyX::spec strain to thymidine prototrophy required not only the canonical thymidylate synthase ThyA but also the dihydrofolate reductase FolA. Strikingly, we also found that addition of exogenous methylenetetrahydrofolate transiently inhibited the growth of the different Rhodobacter strains used in this work. To rationalize these experimental results, we used a mathematical model of bacterial folate metabolism. This model suggests that a very low dihydrofolate reductase activity is enough to rescue significant thymidylate synthesis in the presence of ThyX proteins and is in agreement with the notion that intracellular accumulation of folates results in growth inhibition. In addition, our observations suggest that the presence of flavin-dependent thymidylate synthase X provides growth benefits under conditions in which the level of reduced folate derivatives is compromised.

摘要

尽管黄素依赖性ThyX蛋白在体外表现出胸苷酸合成酶活性,并在异源系统中功能性地弥补thyA缺陷,但它们的细胞功能尚无直接证据。通过对荚膜红细菌thyX进行插入诱变,我们构建了首个明确的thyX失活突变体。对所得突变菌株的表型分析证实,荚膜红细菌ThyX是从头合成胸苷酸所必需的。将荚膜红细菌thyX::spec菌株完全互补至胸苷原养型不仅需要典型的胸苷酸合成酶ThyA,还需要二氢叶酸还原酶FolA。令人惊讶的是,我们还发现添加外源性亚甲基四氢叶酸会短暂抑制本研究中使用的不同红细菌菌株的生长。为合理解释这些实验结果,我们使用了细菌叶酸代谢的数学模型。该模型表明,在存在ThyX蛋白的情况下,非常低的二氢叶酸还原酶活性就足以挽救显著的胸苷酸合成,这与叶酸在细胞内积累导致生长抑制的观点一致。此外,我们的观察结果表明,在还原型叶酸衍生物水平受损的条件下,黄素依赖性胸苷酸合成酶X的存在为生长提供了益处。

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