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Aborted double bicycle-pedal isomerization with hydrogen bond breaking is the primary event of bacteriorhodopsin proton pumping

机译:氢视紫红质质子泵浦的主要事件是中止双氢键断裂和氢键断裂

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摘要

Quantum mechanics/molecular mechanics calculations based on ab initio multiconfigurational second order perturbation theory are employed to construct a computer model of Bacteriorhodopsin that reproduces the observed static and transient electronic spectra, the dipole moment changes, and the energy stored in the photocycle intermediate K. The computed reaction coordinate indicates that the isomerization of the retinal chromophore occurs via a complex motion accounting for three distinct regimes: (i) production of the excited state intermediate I, (ii) evolution of I toward a conical intersection between the excited state and the ground state, and (iii) formation of K. We show that, during stage ii, a space-saving mechanism dominated by an asynchronous double bicycle-pedal deformation of the C10═C11─C12═C13─C14═N moiety of the chromophore dominates the isomerization. On this same stage a N─H/water hydrogen bond is weakened and initiates a breaking process that is completed during stage iii.
机译:基于从头算多构型二阶微扰理论的量子力学/分子力学计算,构建了细菌视紫红质的计算机模型,该模型再现了观察到的静态和瞬态电子光谱,偶极矩变化以及光循环中间体K中存储的能量。计算出的反应坐标表明,视网膜发色团的异构化是通过复杂的运动发生的,该运动解释了三种不同的状态:(i)激发态中间体I的生成,(ii)I向激发态与地面之间的圆锥形交点演化状态,以及(iii)K的形成。我们表明,在阶段ii中,发色团的C10═C11-C12═C13-C14═N部分的异步双自行车踏板形变主导了一种节省空间的机制异构化。在同一阶段,NH /水氢键被削弱,并引发一个断裂过程,该过程在阶段iii中完成。

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