Laboratoire d'Ingénierie des Systèmes Macromoléculaires, CNRS, Marseille, France.
J Phys Chem B. 2010 Jan 14;114(1):604-12. doi: 10.1021/jp9088035.
An atomistic model of isoflurane is constructed and calibrated to describe its conformational preferences and intermolecular interactions. The model, which is compatible with the CHARMM force field for biomolecules, is based on target quantities including bulk liquid properties, molecular conformations, and local interactions with isolated water molecules. Reference data is obtained from tabulated thermodynamic properties and high-resolution structural information from gas-phase electron diffraction, as well as DFT calculations at the B3LYP level. The model is tested against experimentally known solvation properties in water and oil, and shows quantitative agreement. In particular, isoflurane is faithfully described as lipophilic, yet nonhydrophobic, a combination of properties critical to its pharmacological activity. Intermolecular interactions of the model are further probed through simulations of the binding of isoflurane to a binding site in horse spleen apoferritin (HSAF). The observed binding mode compares well with crystallographic data, and the calculated binding affinities are compatible with experimental results, although both computational and experimental measurements are challenging and provide results with limited precision. The model is expected to be useful for detailed simulations of the elementary molecular processes associated with anesthesia. Full parameters are provided as Supporting Information.
构建并校准了一种异氟醚的原子模型,以描述其构象偏好和分子间相互作用。该模型与生物分子的 CHARMM 力场兼容,基于包括液体性质、分子构象和与孤立水分子的局部相互作用等目标量。参考数据来自表格热力学性质和气相电子衍射的高分辨率结构信息,以及 B3LYP 水平的 DFT 计算。该模型经过了在水和油中实验已知的溶剂化性质的测试,表现出定量一致性。特别是,异氟醚被忠实地描述为亲脂性的,而不是疏水性的,这种性质组合对于其药理学活性至关重要。通过模拟异氟醚与马脾脱铁蛋白(HSAF)结合位点的相互作用进一步研究了模型的分子间相互作用。观察到的结合模式与晶体学数据非常吻合,计算出的结合亲和力与实验结果兼容,尽管计算和实验测量都具有挑战性,并且提供的结果精度有限。该模型有望用于与麻醉相关的基本分子过程的详细模拟。完整的参数作为支持信息提供。