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视紫红质激发态异构化动力学中空间相互作用作用的视网膜类似物研究。

Retinal analog study of the role of steric interactions in the excited state isomerization dynamics of rhodopsin.

作者信息

Kochendoerfer G G, Verdegem P J, van der Hoef I, Lugtenburg J, Mathies R A

机构信息

Department of Chemistry, University of California, Berkeley 94720, USA.

出版信息

Biochemistry. 1996 Dec 17;35(50):16230-40. doi: 10.1021/bi961951l.

Abstract

The role of intramolecular steric interactions in the isomerization of the 11-cis-retinal chromophore in the photoreceptor protein rhodopsin is examined with resonance Raman and CD spectroscopy combined with quantum yield experiments. The resonance Raman spectra and CD spectra of 13-demethylrhodopsin indicate that its chromophore, an analog in which the nonbonded interaction between the 10-H and the 13-CH3 groups is removed, is less distorted in the C10...C13 region than the native chromophore. The reduced torsional and hydrogen-out-of-plane resonance Raman intensities further indicate that the excited state potential energy surface has a much shallower slope along the isomerization coordinate. This is consistent with the decrease in quantum yield from 0.67 in rhodopsin to 0.47 in 13-demethylrhodopsin. The resonance Raman intensities show that the steric twist is reintroduced by addition of a methyl group at the C10 position. However, the quantum yield of 10-methyl-13-demethylrhodopsin is found to be only 0.35. This is attributed to nonisomorphous protein-analog interactions. The nonbonded interaction between the 10-hydrogen and the 13-methyl group in 11-cis-retinal makes this isomer particularly effective as the light-sensing chromophore in all visual pigments.

摘要

利用共振拉曼光谱和圆二色光谱并结合量子产率实验,研究了分子内空间相互作用在光感受器蛋白视紫红质中11 -顺式视黄醛发色团异构化过程中的作用。13 -去甲基视紫红质的共振拉曼光谱和圆二色光谱表明,其发色团(一种去除了10 - H和13 - CH₃基团之间非键相互作用的类似物)在C10...C13区域的扭曲程度比天然发色团小。扭转和氢出平面共振拉曼强度的降低进一步表明,激发态势能面沿异构化坐标的斜率要平缓得多。这与量子产率从视紫红质中的0.67降至13 -去甲基视紫红质中的0.47是一致的。共振拉曼强度表明,通过在C10位置添加一个甲基可重新引入空间扭曲。然而,发现10 -甲基 - 13 -去甲基视紫红质的量子产率仅为0.35。这归因于非同构的蛋白质 - 类似物相互作用。11 -顺式视黄醛中10 -氢和13 -甲基基团之间的非键相互作用使得这种异构体作为所有视觉色素中的光感发色团特别有效。

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