Farwell Christopher C, McIntosh John A, Hyster Todd K, Wang Z Jane, Arnold Frances H
Division of Chemistry and Chemical Engineering 210-41, California Institute of Technology , 1200 East California Blvd, Pasadena, California 91125, United States.
J Am Chem Soc. 2014 Jun 18;136(24):8766-71. doi: 10.1021/ja503593n. Epub 2014 Jun 5.
Engineering enzymes with novel reaction modes promises to expand the applications of biocatalysis in chemical synthesis and will enhance our understanding of how enzymes acquire new functions. The insertion of nitrogen-containing functional groups into unactivated C-H bonds is not catalyzed by known enzymes but was recently demonstrated using engineered variants of cytochrome P450BM3 (CYP102A1) from Bacillus megaterium. Here, we extend this novel P450-catalyzed reaction to include intermolecular insertion of nitrogen into thioethers to form sulfimides. An examination of the reactivity of different P450BM3 variants toward a range of substrates demonstrates that electronic properties of the substrates are important in this novel enzyme-catalyzed reaction. Moreover, amino acid substitutions have a large effect on the rate and stereoselectivity of sulfimidation, demonstrating that the protein plays a key role in determining reactivity and selectivity. These results provide a stepping stone for engineering more complex nitrogen-atom-transfer reactions in P450 enzymes and developing a more comprehensive biocatalytic repertoire.
设计具有新型反应模式的酶有望扩大生物催化在化学合成中的应用,并将增进我们对酶如何获得新功能的理解。将含氮官能团插入未活化的C-H键的反应不能由已知酶催化,但最近已通过巨大芽孢杆菌细胞色素P450BM3(CYP102A1)的工程变体得以实现。在此,我们将这种新型P450催化反应扩展到包括分子间将氮插入硫醚以形成亚砜亚胺。对不同P450BM3变体对一系列底物的反应性研究表明,底物的电子性质在这种新型酶催化反应中很重要。此外,氨基酸取代对亚砜亚胺化的速率和立体选择性有很大影响,表明蛋白质在决定反应性和选择性方面起着关键作用。这些结果为在P450酶中设计更复杂的氮原子转移反应以及开发更全面的生物催化方法提供了基石。