Deng H, Callender R H
Physics Department, City College of The City University of New York, New York 10031.
Biochemistry. 1987 Nov 17;26(23):7418-26. doi: 10.1021/bi00397a033.
We have obtained the resonance Raman spectra of bovine rhodopsin, bathorhodopsin, and isorhodopsin for a series of isotopically labeled retinal chromophores. The specific substitutions are at retinal's protonated Schiff base moiety and include -HC = NH+-, -HC = ND+-, -H13C = NH+-, and -H13C = ND+-. Apart from the doubly labeled retinal, we find that the protonated Schiff base frequency is the same, within experimental error, for both rhodopsin and bathorhodopsin for all the substitutions measured here and elsewhere. We develop a force field that accurately fits the observed ethylenic (C = C) and protonated Schiff base stretching frequencies of rhodopsin and labeled derivatives. Using MINDO/3 quantum mechanical procedures, we investigate the response of this force field, and the ethylenic and Schiff base stretching frequencies, to the placement of charges close to retinal's Schiff base moiety. Specifically, we find that the Schiff base frequency should be measurably affected by a 3.0-4.5-A movement of a negatively charged counterion from the positively charged protonated Schiff base moiety. That there is no experimentally discernible difference in the Schiff base frequency between rhodopsin and bathorhodopsin suggests that models for the efficient conversion of light to chemical energy in the rhodopsin to bathorhodopsin photoconversion based solely on salt bridge separation of the protonated Schiff base and its counterion are probably incorrect. We discuss various alternative models and the role of electrostatics in the rhodopsin to bathorhodopsin primary process.
我们获得了一系列同位素标记视黄醛发色团的牛视紫红质、视紫红质中间体和异视紫红质的共振拉曼光谱。具体取代位于视黄醛的质子化席夫碱部分,包括-HC = NH⁺-、-HC = ND⁺-、-H¹³C = NH⁺-和-H¹³C = ND⁺-。除了双标记视黄醛外,我们发现,对于此处及其他地方测量的所有取代,视紫红质和视紫红质中间体的质子化席夫碱频率在实验误差范围内是相同的。我们开发了一个力场,该力场能精确拟合视紫红质及其标记衍生物中观察到的烯键(C = C)和质子化席夫碱伸缩频率。使用MINDO/3量子力学程序,我们研究了该力场以及烯键和席夫碱伸缩频率对靠近视黄醛席夫碱部分电荷位置的响应。具体而言,我们发现,一个带负电荷的抗衡离子从带正电荷的质子化席夫碱部分移动3.0 - 4.5埃,席夫碱频率应会受到显著影响。视紫红质和视紫红质中间体的席夫碱频率在实验上没有可察觉的差异,这表明仅基于质子化席夫碱与其抗衡离子的盐桥分离来解释视紫红质到视紫红质中间体光转化中光有效转化为化学能的模型可能是不正确的。我们讨论了各种替代模型以及静电在视紫红质到视紫红质中间体初级过程中的作用。