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A Nonadiabatic Ab Initio Dynamics Study on Rhodopsin and Its' Analog Isorhodopsin: Chemical Dynamics Reasons behind Selection of Rhodopsin by Life

机译:视紫红质及其类似异视紫红质的非绝热从头动力学研究:生命选择视紫红质的化学动力学原因

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摘要

The structural difference between rhodopsin and isorhodopsin is only in the cis-position of the chromophore, but the difference leads to a large discrepancy in photoisomerization period and quantum yield. The photoinduced cis-trans isomerization dynamics of the two chromophores are investigated using a Quantum Mechanics/Molecular Mechanics trajectory surface hopping scheme. Rhodopsin shows a straightforward and fast excited-state dynamics whereas the isorhodopsin dynamics in the excited state is complicated due to differences in retinal motions and space gaps formed by surrounding residues. Consequently, the isorhodopsin→ bathorhodopsin reaction is slower and less efficient. Photoexcitation of rhodopsin gives bathorhodopsin only, whereas isorhodopsin yields an analog with 9,11-di-cis-retinal in addition to bathorhodopsin. These differences explain why life uses rhodopsin rather than isorhodopsin.
机译:视紫红质和异视紫红质之间的结构差异仅在发色团的顺式位置,但差异导致光致异构化周期和量子产率的巨大差异。使用量子力学/分子力学轨迹表面跳变方案研究了两个生色团的光诱导顺式-反式异构化动力学。视紫红质显示出直接和快速的激发态动力学,而异视紫红质在激发态的动力学由于视网膜运动和周围残基形成的空间间隙的差异而变得复杂。因此,异视紫红质→视紫红质的反应较慢且效率较低。对视紫红质的光激发仅产生了视紫红质,而视紫红质除了产生视紫红质外还产生了具有9,11-二-顺-视网膜的类似物。这些差异解释了为什么生活中使用视紫红质而不是异视紫红质。

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