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通过在细胞色素P450 2B1中引入一个全新的二硫键来探究构象动力学对底物识别和特异性的影响。

Effect of conformational dynamics on substrate recognition and specificity as probed by the introduction of a de novo disulfide bond into cytochrome P450 2B1.

作者信息

Zhang Haoming, Kenaan Cesar, Hamdane Djemel, Hoa Gaston Hui Bon, Hollenberg Paul F

机构信息

Department of Pharmacology, University of Michigan, Ann Arbor, Michigan 48109, USA.

出版信息

J Biol Chem. 2009 Sep 18;284(38):25678-86. doi: 10.1074/jbc.M109.032748. Epub 2009 Jul 15.

Abstract

The conformational dynamics of cytochrome P450 2B1 (CYP2B1) were investigated through the introduction of a disulfide bond to link the I- and K-helices by generation of a double Cys variant, Y309C/S360C. The consequences of the disulfide bonding were examined both experimentally and in silico by molecular dynamics simulations. Under high hydrostatic pressures, the partial inactivation volume for the Y309C/S360C variant was determined to be -21 cm3mol(-1), which is more than twice as much as those of the wild type (WT) and single Cys variants (Y309C, S360C). This result indicates that the engineered disulfide bond has substantially reduced the protein plasticity of the Y309C/S360C variant. Under steady-state turnover conditions, the S360C variant catalyzed the N-demethylation of benzphetamine and O-deethylation of 7-ethoxy-trifluoromethylcoumarin as the WT did, whereas the Y309C variant retained only 39% of the N-demethylation activity and 66% of the O-deethylation activity compared with the WT. Interestingly, the Y309C/S360C variant restored the N-demethylation activity to the same level as that of the WT but decreased the O-deethylation activity to only 19% of the WT. Furthermore, the Y309C/S360C variant showed increased substrate specificity for testosterone over androstenedione. Molecular dynamics simulations revealed that the engineered disulfide bond altered substrate access channels. Taken together, these results suggest that protein dynamics play an important role in regulating substrate entry and recognition.

摘要

通过引入二硫键以连接I螺旋和K螺旋,生成双半胱氨酸变体Y309C/S360C,对细胞色素P450 2B1(CYP2B1)的构象动力学进行了研究。通过分子动力学模拟,从实验和计算机模拟两方面研究了二硫键结合的后果。在高静水压力下,Y309C/S360C变体的部分失活体积测定为-21 cm³mol⁻¹,是野生型(WT)和单半胱氨酸变体(Y309C、S360C)的两倍多。该结果表明,工程化的二硫键显著降低了Y309C/S360C变体的蛋白质可塑性。在稳态周转条件下,S360C变体催化苄非他明的N-去甲基化和7-乙氧基-三氟甲基香豆素的O-去乙基化,与WT相同,而Y309C变体与WT相比,仅保留了39%的N-去甲基化活性和66%的O-去乙基化活性。有趣的是,Y309C/S360C变体将N-去甲基化活性恢复到与WT相同的水平,但将O-去乙基化活性降低到WT的仅19%。此外,Y309C/S360C变体对睾酮的底物特异性相对于雄烯二酮有所增加。分子动力学模拟表明,工程化的二硫键改变了底物进入通道。综上所述,这些结果表明蛋白质动力学在调节底物进入和识别中起重要作用。

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