Aryl C-H iodination: are there actual flavin-dependent iodinases in nature?

被引:0
|
作者
Yuyang Zhang
Lin Chen
Hongping Chen
Tingting Huang
Qing Shi
Xiaozheng Wang
Yan Wang
Man-Cheng Tang
Ning-Yi Zhou
Shuangjun Lin
机构
[1] Xinxiang Medical University,Synthetic Biology Engineering Lab of Henan Province, School of Life Science and Biotechnology
[2] Shanghai Jiao Tong University,State Key Laboratory of Microbial Metabolism, Joint International Laboratory on Metabolic & Developmental Sciences, School of Life Sciences & Biotechnology
来源
Science China Chemistry | 2021年 / 64卷
关键词
flavin-dependent halogenase; flavin reductase; iodination; H; O; iodinase;
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学科分类号
摘要
Flavin-dependent halogenases (FDHs) are well known to introduce carbon halide bonds (mainly C-Cl and C-Br) into natural products with the assistance of a partner protein flavin reductase to generate reduced flavin (FADH2 or FMNH2). Compared with the common chloride- and bromide-containing natural products (approximately 5,000 compounds), iodinated natural products (approximately 100 compounds) are very limited. Specific iodinases have also rarely been identified in nature to date. This study discovered a novel relationship between iodination and flavin reductases for the first time. Through mechanistic studies, it was identified that peroxide (H2O2) was released from the uncoupling reaction of flavin reductases and then reacted with iodide ions (I−) to produce hypoiodous acid (IOH) for the final iodination. Furthermore, this study also unintentionally verified that the recently reported flavin-dependent iodinase VirX1 from the marine virus and its two homologs (MBG and NCV) did not catalyze iodination in the in vitro biochemical system but likely belonged to a new phylogenetic clade in the tryptophan halogenase superfamily. As a consequence, actual flavin-dependent iodinases in nature remain to be discovered by the scientific community in the future.
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页码:1730 / 1735
页数:5
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