Department of Chemistry, Tokyo Institute of Technology, Tokyo, Japan.
Department of Chemistry, Tokyo Institute of Technology, Tokyo, Japan.
Methods Enzymol. 2022;669:45-70. doi: 10.1016/bs.mie.2021.11.025. Epub 2021 Dec 31.
Fosfomycin is a clinically used broad-spectrum antibiotic that has the structure of an oxirane ring with a phosphonic acid substituent and a methyl substituent. In nature, fosfomycin is produced by Streptomyces spp. and Pseudomonas sp., but biosynthesis of fosfomycin significantly differs between the two bacteria, especially in the incorporation mechanism of the methyl group. It has been proposed that the cobalamin-dependent radical S-adenosyl-l-methionine (SAM) enzyme Fom3 is responsible for the methyl-transfer reaction in Streptomyces fosfomycin biosynthesis. In this chapter, we describe the experimental methods to characterize Fom3. We performed the methylation reaction with the purified recombinant Fom3, revealing that Fom3 recognizes a cytidylylated 2-hydroxyethylphosphonate as a substrate and catalyzes stereoselective methylation of the sp carbon at the C2 position to afford cytidylylated (S)-2-hydroxypropylphosphonate. Reaction analysis using deuterium-labeled substrates showed that the 5'-deoxyadenosyl radical generated by reductive cleavage of SAM stereoselectively abstracts the pro-R hydrogen atom of the CH bond at the C2 position of cytidylylated 2-hydroxyethylphosphonate. Therefore, the C-methylation reaction catalyzed by Fom3 proceeds with inversion of the configuration at the C2 position. Experimental methods to elucidate the chemical structures of the substrate and products and the stereochemical course in the Fom3-catalyzed reaction could give information to progress investigation of cobalamin-dependent radical SAM C-methyltransferases.
磷霉素是一种临床应用广泛的抗生素,具有环氧化合物的结构,带有一个膦酸取代基和一个甲基取代基。在自然界中,磷霉素是由链霉菌属和假单胞菌属产生的,但两种细菌的磷霉素生物合成有很大的不同,特别是在甲基的掺入机制上。有人提出,钴胺素依赖的自由基 S-腺苷甲硫氨酸(SAM)酶 Fom3 负责链霉菌磷霉素生物合成中的甲基转移反应。在本章中,我们描述了鉴定 Fom3 的实验方法。我们用纯化的重组 Fom3 进行了甲基化反应,结果表明 Fom3 识别胞苷酰化的 2-羟乙基膦酸作为底物,并催化 C2 位 sp 碳的立体选择性甲基化,生成胞苷酰化的(S)-2-羟丙基膦酸。使用氘标记的底物进行反应分析表明,SAM 还原裂解产生的 5'-脱氧腺苷基自由基立体选择性地从胞苷酰化 2-羟乙基膦酸的 CH 键的反式氢原子上脱除。因此,Fom3 催化的 C-甲基化反应以 C2 位构型的反转方式进行。阐明 Fom3 催化反应中底物和产物的化学结构以及立体化学过程的实验方法可以提供有关钴胺素依赖的自由基 SAM C-甲基转移酶的研究进展的信息。