Revealing O-acetylhomoserine sulfhydrylase involved in direct sulfhydrylation pathway in Clostridium tetani.

Vitalia V Kulikova, Natalya V Anufrieva, Elena A Morozova, Marat M Khisamov, Yaroslav V Tkachev, Mikhail I Kotlov, Yury F Belyi, Vasiliy S Koval, Svetlana V Revtovich, Pavel N Solyev
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Abstract

Bacterial methionine biosynthesis is an attractive target for research due to its central role in cellular metabolism, as most steps of this pathway are missing in mammals. Up to now little is known about sulfur metabolism in pathogenic Clostridia species, making the study of the enzymes of Cys/Met metabolism in Clostridium tetani particularly relevant. Analysis of the C. tetani genome has shown that the bacterium is capable of synthesizing methionine by direct sulfhydration. In this study, we describe purification of recombinant O-acetylhomoserine sulfhydrylase, a member of the Cys/Met metabolism pyridoxal 5'-phosphate-dependent enzyme family, from C. tetani for the first time. The gene encoding O-acetylhomoserine sulfhydrylase was cloned into the pET-28a(+) vector and expressed in Escherichia coli. The expression product was purified and identified as a 462-amino acid protein with a molecular mass of ∼50 kDa as determined by sodium dodecyl sulfate-polyacrylamide gel electrophoresis. The deduced amino acid sequence of the C. tetani enzyme showed a high degree of similarity to O-acetylhomoserine sulfhydrylases from other bacterial sources. We confirmed the O-acetylhomoserine sulfhydrylase activity, and found the enzyme to be optimally active at pH 7.5 and 50 °C. The native enzyme assembles into a homotetramer of approx. 200 kDa as revealed by gel filtration. The obtained enzyme is capable of l-methionine formation using methanethiol as a sulfur source, that has been revealed by 1H NMR spectral data. These findings broaden the understanding of the role of O-acetylhomoserine sulfhydrylase in C. tetani Cys/Met metabolism and provide a basis for its future investigations and research.

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揭示破伤风梭菌参与直接巯基化途径的o -乙酰纯丝氨酸巯基化酶。
细菌蛋氨酸生物合成是一个有吸引力的研究目标,因为它在细胞代谢中的核心作用,因为这一途径的大多数步骤在哺乳动物中缺失。到目前为止,对致病性梭菌的硫代谢知之甚少,这使得研究破伤风梭菌中Cys/Met代谢的酶变得尤为重要。对破伤风杆菌基因组的分析表明,该细菌能够通过直接磺化合成蛋氨酸。在这项研究中,我们首次从破伤风杆菌中纯化了重组o -乙酰纯丝氨酸巯基化酶,该酶是Cys/Met代谢吡哆醛5'-磷酸依赖酶家族的成员。将编码o -乙酰高丝氨酸巯基化酶的基因克隆到pET-28a(+)载体中,并在大肠杆菌中表达。该表达产物经过纯化,经十二烷基硫酸钠-聚丙烯酰胺凝胶电泳鉴定为含有462个氨基酸的蛋白,分子量约为50 kDa。推断出的破伤风杆菌酶的氨基酸序列与其他细菌来源的o -乙酰纯丝氨酸巯基化酶高度相似。我们证实了o -乙酰纯丝氨酸巯基水解酶的活性,并发现酶在pH 7.5和50°C下具有最佳活性。天然酶组装成大约的同型四聚体。凝胶过滤显示为200 kDa。所制得的酶能够以甲硫醇为硫源生成l -蛋氨酸,这已被1H NMR光谱数据所揭示。这些发现拓宽了对o -乙酰纯丝氨酸巯基化酶在破伤风C. Cys/Met代谢中的作用的认识,并为其今后的调查和研究提供了基础。
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