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Molecular Mechanism and Dynamics of S-Deoxyephedrine Moving through Molecular Channels within D3R

机译:S -脱氧麻黄碱在D 3 R内分子通道中移动的分子机理和动力学

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In this article, the trajectories of S -deoxyephedrine (SBD) along molecular channels within the complex protein structure of third dopamine receptor (D_(3)R) are analyzed via molecular dynamic techniques, including potential mean force calculations of umbrella samplings from the 4.5 version of the GROMACS program. Changes in free energy due to the movement of SBD within D_(3)R are determined, and the molecular dynamic mechanisms of SBD transmitting along molecular channels are probed. Molecular simulated results show that the change in free energy is calculated as 171.7 kJ·mol~(–1) for the transmission of SBD toward the outside of the cell along the y + axis functional molecular channel and is 275.0 kJ·mol~(–1) for movement toward the intracellular structure along the y – axis. Within the internal structure of D_(3)R, the changes in free energy are determined to be 103.6, 242.1, 459.7, and 127.8 kJ·mol~(–1) for transmission of SBD along the x +, x –, z +, and z – axes, respectively, toward the cell bilayer membrane, which indicates that SBD leaves much more easily along the x + axis through the gap between the TM5 (the fifth transmembrane helix) and TM6 (the sixth transmembrane helix) from the internal structure of D_(3)R. The values of free-energy changes indicate that SBD molecules can clear the protective channel within D_(3)R, which helps dopamine molecules to leave the D_(3)R internal structure along the x + axis and to prevent them for exerting excessive neurotransmitter function. Therefore, our results suggest that SBD is effective for development as a drug for treating schizophrenia and its pharmacology is closely related to its dynamics and mechanisms within the molecular pathway of dopamine receptors.
机译:在本文中,通过分子动力学技术分析了第三代多巴胺受体(D_(3)R)的复杂蛋白质结构中沿分子通道的S-脱氧麻黄碱(SBD)的轨迹,包括伞状样品的潜在平均力计算从GROMACS程序的4.5版本开始。确定了由于SBD在D_(3)R中的运动而引起的自由能变化,并探讨了SBD沿分子通道传输的分子动力学机制。分子模拟结果表明,SBD沿y +轴功能分子通道向细胞外部的传输自由能变化为171.7 kJ·mol〜(-1),为275.0 kJ·mol 〜(–1)沿 y轴向细胞内结构移动。在D_(3)R的内部结构中,自由能的变化被确定为SBD沿 x +, x –, z +和 z –轴分别朝向细胞双层膜,这表明SBD沿着 x +轴更容易通过TM5之间的间隙离开( D_(3)R的内部结构中的第一个跨膜螺旋)和TM6(第六个跨膜螺旋)。自由能变化的值表明SBD分子可以清除D_(3)R内的保护通道,这有助于多巴胺分子沿着 x +轴离开D_(3)R内部结构,并防止它们发挥过度的神经递质功能。因此,我们的结果表明,SBD作为治疗精神分裂症的药物有效地发展,其药理作用与其在多巴胺受体分子途径内的动力学和机制密切相关。

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