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依赖甲钴胺的自由基S-腺苷甲硫氨酸C-甲基转移酶Fom3识别胞苷-2-羟乙基膦酸酯并催化磷霉素生物合成中的非立体选择性C-甲基化。

Methylcobalamin-Dependent Radical SAM C-Methyltransferase Fom3 Recognizes Cytidylyl-2-hydroxyethylphosphonate and Catalyzes the Nonstereoselective C-Methylation in Fosfomycin Biosynthesis.

作者信息

Sato Shusuke, Kudo Fumitaka, Kim Seung-Young, Kuzuyama Tomohisa, Eguchi Tadashi

机构信息

Department of Chemistry, Tokyo Institute of Technology , 2-12-1 O-okayama, Meguro-ku, Tokyo 152-8551, Japan.

Biotechnology Research Center, The University of Tokyo , 1-1-1 Yayoi, Bunkyo-ku, Tokyo 113-8657, Japan.

出版信息

Biochemistry. 2017 Jul 18;56(28):3519-3522. doi: 10.1021/acs.biochem.7b00472. Epub 2017 Jul 7.

Abstract

A methylcobalamin (MeCbl)-dependent radical S-adenosyl-l-methionine (SAM) methyltransferase Fom3 was found to catalyze the C-methylation of cytidylyl-2-hydroxyethylphosphonate (HEP-CMP) to give cytidylyl-2-hydroxypropylphosphonate (HPP-CMP), although it was originally proposed to catalyze the C-methylation of 2-hydroxyethylphosphonate to give 2-hydroxypropylphosphonate in the biosynthesis of a unique C-P bond containing antibiotic fosfomycin in Streptomyces. Unexpectedly, the Fom3 reaction product from HEP-CMP was almost a 1:1 diastereomeric mixture of HPP-CMP, indicating that the C-methylation is not stereoselective. Presumably, only the CMP moiety of HEP-CMP is critical for substrate recognition; on the other hand, the enzyme does not fix the 2-hydroxy group of the substrate and either of the prochiral hydrogen atoms at the C2 position can be abstracted by the 5'-deoxyadenosyl radical generated from SAM to form the substrate radical intermediates, which react with MeCbl to afford the corresponding products. This strict substrate recognition mechanism with no stereoselectivity of a MeCbl-dependent radical SAM methyltransferase is remarkable in natural product biosynthetic chemistry, because such a hidden clue for selective substrate recognition is likely to be found in the other biosynthetic pathways.

摘要

发现一种依赖甲钴胺(MeCbl)的自由基S-腺苷-L-甲硫氨酸(SAM)甲基转移酶Fom3可催化胞苷酰-2-羟乙基膦酸酯(HEP-CMP)的C-甲基化反应,生成胞苷酰-2-羟丙基膦酸酯(HPP-CMP),尽管最初认为它在链霉菌中独特的含C-P键抗生素磷霉素的生物合成中催化2-羟乙基膦酸酯的C-甲基化反应生成2-羟丙基膦酸酯。出乎意料的是,HEP-CMP的Fom3反应产物几乎是HPP-CMP的1:1非对映异构体混合物,这表明C-甲基化反应没有立体选择性。据推测,只有HEP-CMP的CMP部分对底物识别至关重要;另一方面,该酶不会固定底物的2-羟基,底物C2位的前手性氢原子中的任何一个都可以被SAM产生的5'-脱氧腺苷自由基夺取,形成底物自由基中间体,该中间体与MeCbl反应生成相应产物。在天然产物生物合成化学中,这种依赖MeCbl的自由基SAM甲基转移酶严格的底物识别机制且无立体选择性是引人注目的,因为在其他生物合成途径中可能会发现这种选择性底物识别的隐藏线索。

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