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细胞色素P450酶RosC催化多步氧化反应,形成无活性化合物20-羧基蔷薇霉素。

Cytochrome P450 enzyme RosC catalyzes a multistep oxidation reaction to form the non-active compound 20-carboxyrosamicin.

作者信息

Iizaka Yohei, Takeda Rina, Senzaki Yuki, Fukumoto Atsushi, Anzai Yojiro

机构信息

Faculty of Pharmaceutical Sciences, Toho University, 2-2-1 Miyama, Funabashi, Chiba 274-8510, Japan.

出版信息

FEMS Microbiol Lett. 2017 Jul 3;364(12). doi: 10.1093/femsle/fnx110.

Abstract

The cytochrome P450 enzyme RosC catalyzes a two-step, hydroxylation and alcohol oxidation, oxidation reaction to form the C-20 formyl group in the biosynthesis of a 16-membered macrolide antibiotic rosamicin produced by Micromonospora rosaria IFO13697. RosC is presumed to be involved in the formation of 20-carboxyrosamicin because it has been isolated from the culture broth of M. rosaria. Here, we confirmed that RosC has catalytic activity, with E. coli expressing RosC converting rosamicin into 20-carboxyrosamicin. Therefore, it was revealed that RosC is a multifunctional P450 that catalyzes a three-step oxidation reaction that leads to the formation of the hydroxyl group, formyl group and carboxyl group at C-20 on the macrolactone ring in the rosamicin biosynthetic pathway. Moreover, the cytochrome P450 enzyme TylI, which is involved in formation of the formyl group of a 16-membered macrolide antibiotic tylosin produced by Streptomyces fradiae ATCC 19609, also converted rosamicin into 20-carboxyrosamicin.

摘要

细胞色素P450酶RosC催化两步氧化反应,即羟基化和醇氧化反应,在玫瑰孢小单孢菌IFO13697产生的16元大环内酯类抗生素蔷薇霉素的生物合成过程中形成C-20甲酰基。由于RosC是从玫瑰孢小单孢菌的培养液中分离得到的,因此推测它参与了20-羧基蔷薇霉素的形成。在此,我们证实了RosC具有催化活性,表达RosC的大肠杆菌可将蔷薇霉素转化为20-羧基蔷薇霉素。因此,研究表明RosC是一种多功能P450酶,它催化三步氧化反应,在蔷薇霉素生物合成途径中导致在大环内酯环的C-20位形成羟基、甲酰基和羧基。此外,参与弗氏链霉菌ATCC 19609产生的16元大环内酯类抗生素泰乐菌素甲酰基形成的细胞色素P450酶TylI,也可将蔷薇霉素转化为20-羧基蔷薇霉素。

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