Department of Pharmacology and Toxicology, University of Utah, Salt Lake City, Utah 84112, USA.
J Comput Chem. 2012 Jan 15;33(2):119-33. doi: 10.1002/jcc.21922. Epub 2011 Oct 14.
Molecular mechanics (MM) methods are computationally affordable tools for screening chemical libraries of novel compounds for sites of P450 metabolism. One challenge for MM methods has been the absence of a consistent and transferable set of parameters for the heme within the P450 active site. Experimental data indicate that mammalian P450 enzymes vary greatly in the size, architecture, and plasticity of their active sites. Thus, obtaining X-ray-based geometries for the development of accurate MM parameters for the major classes of hepatic P450 remains a daunting task. Our previous work with preliminary gas-phase quantum mechanics (QM)-derived atomic partial charges greatly improved the accuracy of docking studies of raloxifene to CYP3A4. We have therefore developed and tested a consistent set of transferable MM parameters based on gas-phase QM calculations of two model systems of the heme-a truncated (T-HM) and a full (F-HM) for four states of the P450 catalytic cycle. Our results indicate that the use of the atomic partial charges from the F-HM further improves the accuracy of docked predictions for raloxifene to CYP3A4. Different patterns for substrate docking are also observed depending on the choice of heme model and state. Newly parameterized heme models are tested in implicit and explicitly solvated MD simulations in the absence and presence of enzyme structures, for CYP3A4, and appear to be stable on the nanosecond simulation timescale. The new force field for the various heme states may aid the community for simulations of P450 enzymes and other heme-containing enzymes.
分子力学(MM)方法是一种计算成本低廉的工具,可用于筛选新型化合物库中 P450 代谢的潜在靶点。MM 方法面临的一个挑战是缺乏 P450 活性位点中卟啉的一致且可转移的参数集。实验数据表明,哺乳动物 P450 酶在其活性位点的大小、结构和可塑性方面差异很大。因此,为主要类型的肝 P450 获得基于 X 射线的几何形状以开发准确的 MM 参数仍然是一项艰巨的任务。我们之前使用初步的气相量子力学(QM)衍生的原子部分电荷进行的工作极大地提高了将雷洛昔芬对接至 CYP3A4 的研究的准确性。因此,我们开发并测试了一套一致的可转移 MM 参数,这些参数基于气相 QM 计算两个模型系统的卟啉 - 截断(T-HM)和完整(F-HM),用于 P450 催化循环的四个状态。我们的结果表明,使用 F-HM 的原子部分电荷进一步提高了雷洛昔芬对接至 CYP3A4 的对接预测的准确性。根据卟啉模型和状态的选择,还观察到不同的底物对接模式。在没有和存在酶结构的情况下,在隐式和显式溶剂化 MD 模拟中测试了新参数化的卟啉模型,对于 CYP3A4 而言,它们在纳秒模拟时间尺度上似乎是稳定的。各种卟啉状态的新力场可能有助于社区进行 P450 酶和其他含血红素酶的模拟。