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通过分子模拟评估视觉中的视网膜抗衡离子开关机制。

Retinal counterion switch mechanism in vision evaluated by molecular simulations.

作者信息

Martínez-Mayorga Karina, Pitman Michael C, Grossfield Alan, Feller Scott E, Brown Michael F

机构信息

Departments of Chemistry and Physics, University of Arizona, Tucson, AZ 85721, USA.

出版信息

J Am Chem Soc. 2006 Dec 27;128(51):16502-3. doi: 10.1021/ja0671971.

Abstract

Photoisomerization of the retinylidene chromophore of rhodopsin is the starting point in the vision cascade. A counterion switch mechanism that stabilizes the retinal protonated Schiff base (PSB) has been proposed to be an essential step in rhodopsin activation. On the basis of vibrational and UV-visible spectroscopy, two counterion switch models have emerged. In the first model, the PSB is stabilized by Glu181 in the meta I state, while in the most recent proposal, it is stabilized by Glu113 as well as Glu181. We assess these models by conducting a pair of microsecond scale, all-atom molecular dynamics simulations of rhodopsin embedded in a 99-lipid bilayer of SDPC, SDPE, and cholesterol (2:2:1 ratio) varying the starting protonation state of Glu181. Theoretical simulations gave different orientations of retinal for the two counterion switch mechanisms, which were used to simulate experimental 2H NMR spectra for the C5, C9, and C13 methyl groups. Comparison of the simulated 2H NMR spectra with experimental data supports the complex-counterion mechanism. Hence, our results indicate that Glu113 and Glu181 stabilize the retinal PSB in the meta I state prior to activation of rhodopsin.

摘要

视紫红质视黄醛发色团的光异构化是视觉级联反应的起点。一种稳定视网膜质子化席夫碱(PSB)的抗衡离子开关机制被认为是视紫红质激活过程中的关键步骤。基于振动光谱和紫外可见光谱,出现了两种抗衡离子开关模型。在第一个模型中,PSB在中间体I状态下由Glu181稳定,而在最新的提议中,它由Glu113和Glu181共同稳定。我们通过对嵌入由SDPC、SDPE和胆固醇(比例为2:2:1)组成的99脂质双层中的视紫红质进行一对微秒级的全原子分子动力学模拟来评估这些模型,其中Glu181的起始质子化状态有所不同。理论模拟给出了两种抗衡离子开关机制下视网膜的不同取向,这些取向被用于模拟C5、C9和C13甲基的实验2H NMR光谱。模拟的2H NMR光谱与实验数据的比较支持了复杂抗衡离子机制。因此,我们的结果表明,在视紫红质激活之前,Glu113和Glu181在中间体I状态下稳定视网膜PSB。

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