Department of Chemistry, Indiana University, Bloomington, Indiana, USA.
Chirality. 2023 Aug;35(8):452-460. doi: 10.1002/chir.23550. Epub 2023 Mar 14.
In nature, flavin-dependent halogenases (FDHs) catalyze site-selective chlorination and bromination of aromatic natural products. This ability has led to extensive efforts to engineer FDHs for selective chlorination, bromination, and iodination of electron rich aromatic compounds. On the other hand, FDHs are unique among halogenases and haloperoxidases that exhibit catalyst-controlled site selectivity in that no examples of enantioselective FDH catalysis in natural product biosynthesis have been characterized. Over the past several years, our group has established that FDHs can catalyze enantioselective reactions involving desymmetrization, atroposelective halogenation, and halocyclization. Achieving high activity and selectivity for these reactions has required extensive mutagenesis and mitigation of problems resulting from hypohalous acid generated during FDH catalysis. The single-component flavin reductase/FDH AetF is unique among the wild type enzyme we have studied in that it provides high activity and selectivity toward several asymmetric transformations. These results highlight the ability of FDH active sites to tolerate different substrate topologies and suggest that they could be useful for a broad range of oxidative halogenations.
在自然界中,黄素依赖型卤化酶(FDH)催化芳香天然产物的位点选择性氯化和溴化。这种能力促使人们广泛致力于工程化 FDH,以实现富电子芳香族化合物的选择性氯化、溴化和碘化。另一方面,FDH 在卤化酶和过卤化酶中是独特的,因为在天然产物生物合成中没有表现出催化剂控制的位点选择性的对映选择性 FDH 催化的例子。在过去的几年中,我们小组已经确定 FDH 可以催化涉及去对称化、对映选择性卤化和卤环化的对映选择性反应。要实现这些反应的高活性和选择性,需要进行广泛的突变,并减轻 FDH 催化过程中生成次卤酸所带来的问题。与我们研究过的野生型酶相比,单组分黄素还原酶/FDH AetF 是独特的,因为它对几种不对称转化具有高活性和选择性。这些结果突出了 FDH 活性位点能够耐受不同的底物拓扑结构的能力,并表明它们可能对广泛的氧化卤化反应有用。