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Tracking the primary photoconversion events in rhodopsins by ultrafast optical spectroscopy

机译:通过超快速光谱法跟踪视紫红质中的主要光转换事件

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摘要

Opsins are a broad class of photoactive proteins, found in all classes of living beings from bacteria to higher animals, which work either as light-driven ion pumps or as visual pigments. The photoactive function in opsins is triggered by the ultrafast isomerization of the retinal chromophore around a specific carbon double bond, leading to a highly distorted, spectrally red-shifted photoproduct. Understanding, by either experimental or computational methods, the time course of this photoisomerization process is of utmost importance, both for its biological significance and because opsin proteins are the blueprint for molecular photoswitches. This paper focuses on the ultrafast 11-cis to all-trans isomerization in visual rhodopsins, and has a twofold goal: (i) to review the most recent experimental and computational efforts aimed at exposing the very early phases of photoconversion; and (ii) discuss future advanced experiments and calculations that will allow an even deeper understanding of the process. We present high time resolution pump-probe data, enabling us to follow the wavepacket motion through the conical intersection connecting excited and ground states, as well as femtosecond stimulated Raman scattering data allowing us to track the subsequent structural evolution until the first stable all-trans photoproduct is reached. We conclude by introducing computational results for two-dimensional electronic spectroscopy, which has the potential to provide even greater detail on the evolution of the electronic structure of retinal during the photoisomerization process.
机译:视蛋白是一类广泛的光敏蛋白,存在于从细菌到高等动物的所有生物中,它们既可以用作光驱动的离子泵,也可以用作视觉色素。视蛋白中的光敏功能是由视网膜发色团围绕特定碳双键的超快异构化触发的,从而导致高度扭曲的,光谱发生红移的光产物。通过实验或计算方法,了解这种光异构化过程的时间过程极为重要,这既出于其生物学意义,又因为视蛋白是分子光开关的蓝图。本文着眼于视紫红质中超快的11-顺式至全反式异构化,并具有双重目标:(i)综述旨在揭示光转化非常早期阶段的最新实验和计算成果; (ii)讨论未来的高级实验和计算方法,以使人们对该过程有更深入的了解。我们提供了高分辨率的泵浦数据,使我们能够通过连接激发态和基态的圆锥形交叉点跟踪波包运动,以及飞秒激发的拉曼散射数据,从而使我们能够跟踪随后的结构演化,直到第一个稳定的全跨达到photoproduct。我们通过引入二维电子光谱的计算结果得出结论,该结果有可能在光异构化过程中提供有关视网膜电子结构演变的更多细节。

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