Heel Thomas, McIntosh John A, Dodani Sheel C, Meyerowitz Joseph T, Arnold Frances H
Division of Chemistry and Chemical Engineering 210-41, California Institute of Technology, 1200 E. California Boulevard, Pasadena, CA 91125 (USA).
Chembiochem. 2014 Nov 24;15(17):2556-62. doi: 10.1002/cbic.201402286. Epub 2014 Oct 7.
Recent work has shown that engineered variants of cytochrome P450BM3 (CYP102A1) efficiently catalyze non-natural reactions, including carbene and nitrene transfer reactions. Given the broad substrate range of natural P450 enzymes, we set out to explore if this diversity could be leveraged to generate a broad panel of new catalysts for olefin cyclopropanation (i.e., carbene transfer). Here, we took a step towards this goal by characterizing the carbene transfer activities of four new wild-type P450s that have different native substrates. All four were active and exhibited a range of product selectivities in the model reaction: cyclopropanation of styrene by using ethyl diazoacetate (EDA). Previous work on P450BM3 demonstrated that mutation of the axial coordinating cysteine, universally conserved among P450 enzymes, to a serine residue, increased activity for this non-natural reaction. The equivalent mutation in the selected P450s was found to activate carbene transfer chemistry both in vitro and in vivo. Furthermore, serum albumins complexed with hemin were also found to be efficient in vitro cyclopropanation catalysts.
最近的研究表明,细胞色素P450BM3(CYP102A1)的工程变体能够有效催化非天然反应,包括卡宾和氮烯转移反应。鉴于天然P450酶具有广泛的底物范围,我们着手探究是否可以利用这种多样性来生成一系列用于烯烃环丙烷化(即卡宾转移)的新型催化剂。在此,我们朝着这一目标迈出了一步,对四种具有不同天然底物的新型野生型P450的卡宾转移活性进行了表征。在模型反应中,即使用重氮乙酸乙酯(EDA)对苯乙烯进行环丙烷化反应时,所有这四种酶均具有活性,并表现出一系列产物选择性。先前关于P450BM3的研究表明,将P450酶中普遍保守的轴向配位半胱氨酸突变为丝氨酸残基,可提高这种非天然反应的活性。在所选择的P450中发现,等效突变在体外和体内均能激活卡宾转移化学过程。此外,还发现与血红素复合的血清白蛋白在体外是有效的环丙烷化催化剂。