Huang Xiaoqin, Zhan Chang-Guo
Department of Pharmaceutical Sciences, College of Pharmacy, University of Kentucky, Lexington, Kentucky, USA.
Biophys J. 2007 Nov 15;93(10):3627-39. doi: 10.1529/biophysj.107.110924. Epub 2007 Aug 17.
By performing homology modeling, molecular docking, and molecular dynamics simulations, we have developed three-dimensional (3D) structural models of both dopamine transporter and dopamine transporter-dopamine complex in the environment of lipid bilayer and solvent water. According to the simulated structure of dopamine transporter-dopamine complex, dopamine was orientated in a hydrophobic pocket at the midpoint of the membrane. The modeled 3D structures provide some detailed structural and mechanistic insights concerning how dopamine transporter (DAT) interacts with dopamine at atomic level, extending our mechanistic understanding of the dopamine reuptake with the help of Na(+) ions. The general features of the modeled 3D structures are consistent with available experimental data. Based on the modeled structures, our calculated binding free energy (DeltaG(bind) = -6.4 kcal/mol) for dopamine binding with DAT is also reasonably close to the experimentally derived DeltaG(bind) value of -7.4 kcal/mol. Finally, a possible dopamine-entry pathway, which involves formation and breaking of the salt bridge between side chains of Arg(85) and Asp(476), is proposed based on the results obtained from the modeling and molecular dynamics simulation. The new structural and mechanistic insights obtained from this computational study are expected to stimulate future, further biochemical and pharmacological studies on the detailed structures and mechanisms of DAT and other homologous transporters.
通过进行同源建模、分子对接和分子动力学模拟,我们构建了脂质双层和溶剂水环境中多巴胺转运体及多巴胺转运体 - 多巴胺复合物的三维(3D)结构模型。根据模拟的多巴胺转运体 - 多巴胺复合物结构,多巴胺定位于膜中点处的疏水口袋中。所构建的3D结构模型提供了一些关于多巴胺转运体(DAT)与多巴胺在原子水平上如何相互作用的详细结构和机制见解,借助钠离子扩展了我们对多巴胺再摄取机制的理解。所构建3D结构的总体特征与现有实验数据一致。基于所构建的结构,我们计算得到的多巴胺与DAT结合的自由能(ΔG(bind) = -6.4 kcal/mol)也与实验得出的 -7.4 kcal/mol的ΔG(bind)值相当接近。最后,基于建模和分子动力学模拟结果,提出了一种可能的多巴胺进入途径,该途径涉及精氨酸(Arg(85))和天冬氨酸(Asp(476))侧链之间盐桥的形成与断裂。预计从这项计算研究中获得的新的结构和机制见解将激发未来对DAT及其他同源转运体的详细结构和机制进行进一步的生化和药理学研究。