Girvan Hazel M, Heyes Derren J, Scrutton Nigel S, Munro Andrew W
Manchester Interdisciplinary Biocentre, Faculty of Life Sciences, University of Manchester, 131 Princess Street, Manchester M1 7DN, U.K.
J Am Chem Soc. 2007 May 23;129(20):6647-53. doi: 10.1021/ja071355m. Epub 2007 Apr 28.
We demonstrate that photoexcitation of NAD(P)H at 355 nm using a Nd:YAG laser leads to rapid reduction of the heme domain of the Bacillus megaterium fatty acid hydroxylase flavocytochrome P450 BM3. An aqueous electron derived from photoexcited NAD(P)H is rapidly transferred to the heme domain, enabling the formation of a carbon monoxy complex of the ferrous P450 (FeII-CO) on the microsecond time scale. Using this approach we have determined the limiting rate constant (1770 s-1 for substrate-free heme domain) for formation of the FeII-CO complex. We find no dependence of the observed rate of FeII-CO complex formation on NAD(P)H concentration but demonstrate a hyperbolic dependence on carbon monoxide concentration. The apparent dissociation constant for the complex of carbon monoxide bound noncovalently to the ferric form of the BM3 heme domain (and with NADH as reductant) is 323 microM. Binding of a P450 substrate (N-palmitoylglycine) weakened the complex between carbon monoxide and the ferric BM3 heme domain (Kd increased to 1404 microM) but enhanced the rate of formation of the FeII-CO complex (3036 s-1 for substrate-free heme domain). This study demonstrates the applicability of NAD(P)H photoexcitation as a method for rapid electron delivery to P450 enzymes and provides a new route to probing the P450 catalytic cycle and its transient intermediates.
我们证明,使用钕:钇铝石榴石激光在355 nm波长下对NAD(P)H进行光激发,会导致巨大芽孢杆菌脂肪酸羟化酶黄素细胞色素P450 BM3的血红素结构域迅速还原。光激发的NAD(P)H产生的水合电子迅速转移到血红素结构域,使得在微秒时间尺度上形成亚铁P450的一氧化碳复合物(FeII-CO)。利用这种方法,我们确定了FeII-CO复合物形成的极限速率常数(无底物血红素结构域为1770 s-1)。我们发现观察到的FeII-CO复合物形成速率不依赖于NAD(P)H浓度,但证明其对一氧化碳浓度呈双曲线依赖关系。一氧化碳与BM3血红素结构域的铁形式非共价结合(以NADH作为还原剂)的复合物的表观解离常数为323 microM。P450底物(N-棕榈酰甘氨酸)的结合削弱了一氧化碳与铁BM3血红素结构域之间的复合物(Kd增加到1404 microM),但提高了FeII-CO复合物的形成速率(无底物血红素结构域为3036 s-1)。这项研究证明了NAD(P)H光激发作为一种向P450酶快速传递电子的方法的适用性,并为探索P450催化循环及其瞬态中间体提供了一条新途径。