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首页> 外文期刊>Frontiers in Chemistry >Chloride Ion Transport by the E. coli CLC Cl–/H+ Antiporter: A Combined Quantum-Mechanical and Molecular-Mechanical Study
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Chloride Ion Transport by the E. coli CLC Cl–/H+ Antiporter: A Combined Quantum-Mechanical and Molecular-Mechanical Study

机译:大肠杆菌CLC Cl- / H +反转运蛋白的氯离子迁移:量子力学和分子力学的联合研究

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摘要

We performed steered molecular dynamics (SMD) and umbrella sampling simulations of Cl– ion migration through the transmembrane domain of a prototypical E. coli CLC Cl–/H+ antiporter employing combined quantum-mechanical (QM) and molecular-mechanical (MM) calculations. The SMD simulations revealed interesting conformational changes of the protein. While no large-amplitude motions of the protein were observed during pore opening, the side chain rotation of the protonated external gating residue Glu148 was found critical to full access of the channel entrance by Cl–. Moving the anion into the external binding site (Sext) induced small-amplitude shifting of the protein backbone at the N-terminal end of helix F. As Cl– travelled through the pore, rigid-body swinging motions of helix R separated it from helix D. Helix R returned to its original position once Cl– exited the channel. Population analysis based on polarized wavefunction from QM/MM calculations discovered significant (up to 20%) charge loss for Cl– along the ion translocation pathway inside the pore. The delocalized charge was redistributed onto the pore residues, especially the functional groups containing pi bonds (e.g. the Tyr445 side chain), while the charges of the H atoms coordinating Cl– changed almost negligibly. Potentials of mean force computed from umbrella sampling at the QM/MM and MM levels both displayed barriers at the same locations near the pore entrance and exit. However, the QM/MM PMF showed higher barriers (~10 kcal/mol) than the MM PMF (~2 kcal/mol). Binding energy calculations indicated that the interactions between Cl– and certain pore residues were overestimated by the semi-empirical PM3 Hamiltonian and underestimated by the CHARMM36 force fields, both of which were employed in the umbrella sampling simulations. In particular, CHARMM36 underestimated binding interactions for the functional groups containing pi bonds, missing the stabilizations of the Cl– ion due to electron delocalization. The results suggested that it is important to explore these quantum effects for accurate descriptions of the Cl– transport.
机译:我们采用结合了量子力学(QM)和分子力学(MM)的计算方法,对通过典型的大肠杆菌CLC Cl- / H +反向转运蛋白的跨膜结构域进行的Cl-离子迁移进行了分子动力学(SMD)和伞状采样模拟。 SMD模拟揭示了蛋白质有趣的构象变化。虽然在开孔期间未观察到蛋白质的大幅度运动,但发现质子化的外部门控残基Glu148的侧链旋转对于Cl–完全进入通道入口至关重要。将阴离子移动到外部结合位点(Sext)会引起螺旋F的N末端蛋白质骨架的小幅度移动。当Cl–穿过孔时,螺旋R的刚体摇摆运动将其与螺旋分开D.一旦Cl–退出通道,Helix R便返回其原始位置。根据QM / MM计算得出的极化波函数进行的种群分析发现,Cl–沿孔内离子易位途径的电荷损失很大(高达20%)。离域的电荷重新分布在孔残基上,尤其是含有pi键的官能团(例如Tyr445侧链),而配位Cl–的H原子的电荷几乎可以忽略不计。在QM / MM和MM水平下,通过伞形采样计算出的平均力的潜力都在孔隙入口和出口附近的相同位置显示了障碍。但是,QM / MM PMF显示出比MM PMF(〜2 kcal / mol)更高的势垒(〜10 kcal / mol)。结合能计算表明,Cl-和某些孔隙残基之间的相互作用被半经验PM3哈密顿量高估了,而CHARMM36力场则低估了这两者,二者均在伞式采样模拟中使用。特别是,CHARMM36低估了含有pi键的官能团的结合相互作用,由于电子离域而使Cl-离子失去了稳定性。结果表明,重要的是要探索这些量子效应,以准确描述Cl-的迁移。

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