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High-pressure near-infrared Raman spectroscopy of bacteriorhodopsin light to dark adaptation.

机译:细菌视紫红质的高压近红外拉曼光谱可适应暗色。

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摘要

Near-infrared (NIR) Raman spectroscopy is employed as an in situ probe of the chromophore conformation to study the light to dark-adaptation process in bacteriorhodopsin (bR) at variable pressure and temperature in the absence of undesired photoreactions. In dark-adapted bR deconvolution of the ethylenic mode into bands assigned to the all-trans (1526 cm-1) and 13-cis (1534 cm-1) isomers yields a 13-cis to all-trans ratio equal to 1 at ambient pressure (Schulte et al., 1995, Appl. Spectrosc. 49:80-83). Detailed spectroscopic evidence is presented that at high pressure the equilibrium is shifted toward the 13-cis isomers and that the light to dark adaptation kinetics is accelerated. The change in isomeric composition with temperature and pressure as well as the kinetics support a two-state model activation volumes of -16 ml/mol for the transition of 13-cis to all-trans and -22 ml/mol for the reverse process. These compare with a conformational volume difference of 6.6 ml/mol, which may be attributed to the ionization of one or two residues or the formation of three hydrogen bonds.
机译:将近红外(NIR)拉曼光谱用作生色团构象的原位探针,以在不希望的光反应不存在的情况下,在可变压力和温度下研究细菌视紫红质(bR)中的光暗适应过程。在黑暗适应的烯键式bR反卷积为分配给全反式(1526 cm-1)和13-顺式(1534 cm-1)异构体的谱带中,在环境温度下产生的13-顺式与全反式比率等于1压力(Schulte等,1995,Appl.Spectrosc.49:80-83)。详细的光谱证据表明,在高压下,平衡向13-顺式异构体转移,并且加速了光到暗的适应动力学。异构体组成随温度和压力以及动力学的变化,为从13-顺式转变为全反式和-22 ml / mol的逆过程提供了-16 ml / mol的两种状态模型活化体积。相比之下,其构象体积差为6.6 ml / mol,这可能归因于一个或两个残基的电离或三个氢键的形成。

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