Phintha Aisaraphon, Prakinee Kridsadakorn, Chaiyen Pimchai
Department of Biochemistry and Center for Excellence in Protein and Enzyme Technology, Faculty of Science, Mahidol University, Bangkok, Thailand.
School of Biomolecular Science and Engineering, Vidyasirimedhi Institute of Science and Technology (VISTEC), Wangchan Valley, Rayong, Thailand.
Enzymes. 2020;47:327-364. doi: 10.1016/bs.enz.2020.05.009. Epub 2020 Jul 18.
Overall, this review highlights the structures, mechanisms and applications of flavin-dependent halogenases (FDHs) for future development of FDHs as potential biocatalysts. FDHs catalyze incorporation of halogen atoms into a broad range of substrates. The reactions involved in the production of various halogenated natural products which are important drugs. Typical substrates for FDHs include indole, pyrrole, phenolic and aliphatic compounds. In addition to organic substrates, all FDHs utilize reduced FAD (FADH), oxygen and halides as co-substrates. Structural studies reveal that FDHs all have similar FAD binding sites. However, FDHs have variations between the different isotypes including different recognition residues for substrate binding and some unique loop structures and conformations. These different structural differences suggest that variations in reaction catalysis exist. However, limited knowledge of the reaction mechanisms of FDHs is currently available. Various biocatalytic applications of FDHs have been explored. Further investigation of the catalytic reactions of FDHs is essential for improving enzyme engineering work to enable FDHs catalysis of challenging reactions.
总体而言,本综述重点介绍了黄素依赖性卤化酶(FDHs)的结构、机制和应用,以期未来将FDHs开发为潜在的生物催化剂。FDHs可催化卤原子掺入多种底物中。这些反应参与了各种作为重要药物的卤化天然产物的生成。FDHs的典型底物包括吲哚、吡咯、酚类和脂肪族化合物。除了有机底物外,所有FDHs都利用还原型FAD(FADH)、氧气和卤化物作为共底物。结构研究表明,FDHs都具有相似的FAD结合位点。然而,不同亚型的FDHs之间存在差异,包括底物结合的不同识别残基以及一些独特的环结构和构象。这些不同的结构差异表明反应催化存在差异。然而,目前关于FDHs反应机制的了解有限。人们已经探索了FDHs的各种生物催化应用。进一步研究FDHs的催化反应对于改进酶工程工作以实现FDHs催化具有挑战性的反应至关重要。