Department of Chemistry, Xavier University of Louisiana, One Drexel Drive, New Orleans, Louisiana 70125, USA.
Chem Res Toxicol. 2010 Mar 15;23(3):600-7. doi: 10.1021/tx900348v.
A computational study was undertaken to understand the nature of binding and the structural features that play a significant role in the binding of arylacetylene molecules to cytochrome P450 enzymes 1A1, 1A2, 2A6, and 2B1. Nine polycyclic arylacetylenes determined to be mechanism-based P450 enzyme inhibitors were studied. The lack of polar substituents in these compounds causes them to be incapable of hydrogen bonding to the polar protein residues. The four P450 enzymes of interest all have phenylalanine residues in the binding pocket for potential pi-pi interactions with the aromatic rings of the inhibitors. The inhibition potency of these arylacetylenes toward P450s 1A1 and 2B1 showed a dependence on the proximity of the inhibitor's triple bond to the prosthetic heme Fe of the enzyme. In P450 enzyme 1A2, the inhibitor's potency showed more dependence on the pi-pi interactions of the inhibitor's ring systems with the phenylalanine residues of the protein, with the proximity of the inhibitor triple bond to the heme Fe weighing in as the second most important factor. The results suggest that maximizing the pi-pi interactions with phenylalanine residues in the binding pocket and optimum proximity of the acetylene moiety to the heme Fe will provide for a substantial increase in the potency of the polyaromatic hydrocarbon mechanism-based inhibitors. A fine balance of these two aspects of binding coupled with attention to supplementing hydrophobic interactions could address potency and selectivity issues for these inhibitors.
进行了一项计算研究,以了解芳基乙炔分子与细胞色素 P450 酶 1A1、1A2、2A6 和 2B1 结合的性质和结构特征。研究了九种被确定为基于机制的 P450 酶抑制剂的多环芳基乙炔。这些化合物缺乏极性取代基,因此它们不能与极性蛋白残基形成氢键。感兴趣的四个 P450 酶在结合口袋中都有苯丙氨酸残基,可与抑制剂的芳环发生潜在的 pi-pi 相互作用。这些芳基乙炔对 P450 1A1 和 2B1 的抑制效力取决于抑制剂三键与酶辅因子血红素 Fe 的接近程度。在 P450 酶 1A2 中,抑制剂的效力更取决于抑制剂的环系统与蛋白质中苯丙氨酸残基的 pi-pi 相互作用,而抑制剂三键与血红素 Fe 的接近程度则是第二重要因素。结果表明,最大限度地增加与结合口袋中苯丙氨酸残基的 pi-pi 相互作用以及炔基部分与血红素 Fe 的最佳接近程度,将显著提高多环芳烃基于机制的抑制剂的效力。结合这两个结合方面的精细平衡,并注意补充疏水性相互作用,可以解决这些抑制剂的效力和选择性问题。