Saito Keita, Dan Hikari, Masuda Kazufumi, Katsu Takashi, Hanioka Nobumitsu, Yamamoto Shigeo, Miyano Kazuko, Yamano Shigeru, Narimatsu Shizuo
Laboratory of Health Chemistry, Graduate School of Medicine, Dentistry and Pharmaceutical Sciences, Okayama University, Okayama, Japan.
Chirality. 2007 Jul;19(7):550-8. doi: 10.1002/chir.20412.
We examined the enzymatic function of recombinant CYP2C19 in enantiomeric hexobarbital (HB) 3'-hydroxylation, and searched the roles of amino acid residues, such as Phe-100, Phe-114, Asp-293, Glu-300, and Phe-476 of CYP2C19 in the stereoselective HB 3'-hydroxylation, using a yeast cell expression system and site-directed mutagenesis method. CYP2C19 wild-type exerted substrate enantioselectivity of (R)-HB>>(S)-HB and metabolite diastereoselectivity of 3'(R)<3'(S) in 3'-hydroxylation of HB enantiomers. The substitution of Asp-293 by alanine failed to yield an observable peak at 450 nm in its reduced carbon monoxide-difference spectrum. CYP2C19-E300A and CYP2C19-E300V with alanine and valine, respectively, in place of Glu-300 exerted total HB 3'-hydroxylation activities of 45 and 108%, respectively, that of the wild-type. Interestingly, these two mutants showed substrate enantioselectivity of (R)-HB<(S)-HB, which is opposite to that of the wild-type, while metabolite diasteroselectivity remained unchanged. The replacement of Phe-476 by alanine increased total HB 3'-hydroxylation activity to approximately 3-fold that of the wild-type. Particularly, 3'(S)-OH-(S)-HB-forming activity elevated to 7-fold that of the wild-type, resulting in the reversal of the substrate enantioselectivity. In contrast, the substitution of phenylalanine at positions 100 and 114 by alanine did not produce a remarkable change in the total activity or the substrate enantioselectivity. These results indicate that Glu-300 and Phe-476 are important in stereoselective oxidation of HB enantiomers by CYP2C19.
我们研究了重组CYP2C19对映体己巴比妥(HB)3'-羟基化的酶促功能,并利用酵母细胞表达系统和定点诱变方法,探究了CYP2C19的苯丙氨酸-100、苯丙氨酸-114、天冬氨酸-293、谷氨酸-300和苯丙氨酸-476等氨基酸残基在立体选择性HB 3'-羟基化中的作用。CYP2C19野生型在HB对映体的3'-羟基化中表现出(R)-HB>>(S)-HB的底物对映体选择性和3'(R)<3'(S)的代谢物非对映体选择性。用丙氨酸取代天冬氨酸-293后,其还原型一氧化碳差光谱在450 nm处未出现可观察到的峰。分别用丙氨酸和缬氨酸取代谷氨酸-300的CYP2C19-E300A和CYP2C19-E300V的总HB 3'-羟基化活性分别为野生型的45%和108%。有趣的是,这两个突变体表现出(R)-HB<(S)-HB的底物对映体选择性,这与野生型相反,而代谢物非对映体选择性保持不变。用丙氨酸取代苯丙氨酸-476使总HB 3'-羟基化活性提高到野生型的约3倍。特别是,3'(S)-OH-(S)-HB形成活性提高到野生型的7倍,导致底物对映体选择性逆转。相比之下,用丙氨酸取代100位和114位的苯丙氨酸在总活性或底物对映体选择性方面未产生显著变化。这些结果表明,谷氨酸-300和苯丙氨酸-476在CYP2C19对HB对映体的立体选择性氧化中起重要作用。