Skaggs School of Pharmacy and Pharmaceutical Sciences, University of California San Diego, La Jolla, 92093-0703, USA.
Curr Drug Metab. 2012 Feb;13(2):167-76. doi: 10.2174/138920012798918417.
In the past three years, major advances in understanding cytochrome P450 2B (CYP2B) structure-function relationships have been made through determination of multiple ligand-bound and one ligand-free X-ray crystal structure of CYP2B4 and one ligand-bound X-ray crystal structure of CYP2B6. These structures have provided insight into the features that provide the high degree of plasticity of the enzymes. A combination of a phenylalanine cluster that allows for concerted movement of helices F through G and a conserved set of electrostatic interactions involving Arg(262) facilitates movement of this region to accommodate binding of ligands of various sizes without perturbing most of the P450 fold. Integrating solution based techniques such as NMR or deuterium exchange mass spectrometry (DXMS) with computational methods including molecular docking has provided further insight into enzyme behavior upon ligand binding. In addition, extended molecular dynamics simulations have provided a link between an open and a closed conformation of ligand-free CYP2B4 found in crystal structures. Other studies revealed the utility of rational engineering in improving stability of P450s to facilitate structural studies. The solution and computational results combined with the X-ray crystal structures yield a comprehensive picture of how these enzymes adopt different conformations to bind various ligands.
在过去的三年中,通过确定 CYP2B4 的多个配体结合和一个配体自由的 X 射线晶体结构以及 CYP2B6 的一个配体结合的 X 射线晶体结构,在理解细胞色素 P450 2B(CYP2B)结构-功能关系方面取得了重大进展。这些结构深入了解了提供酶高度可塑性的特征。一个苯丙氨酸簇允许 F 到 G 螺旋的协同运动,以及一组保守的静电相互作用,涉及 Arg(262),有助于该区域的运动,以适应各种大小的配体的结合,而不会干扰大多数 P450 折叠。将基于溶液的技术(如 NMR 或氘交换质谱(DXMS)与计算方法(包括分子对接)相结合,进一步深入了解了配体结合时酶的行为。此外,扩展的分子动力学模拟提供了在晶体结构中发现的无配体 CYP2B4 的开放和闭合构象之间的联系。其他研究表明,合理的工程设计在提高 P450 的稳定性以促进结构研究方面具有实用性。溶液和计算结果与 X 射线晶体结构相结合,全面描绘了这些酶如何采用不同的构象来结合各种配体。