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从视紫红质到无光照视紫红质的反应途径建模。

Modeling reaction routes from rhodopsin to bathorhodopsin.

机构信息

Department of Chemistry, MV Lomonosov Moscow State University, Moscow 119991, Russian Federation.

出版信息

Proteins. 2010 Feb 15;78(3):614-22. doi: 10.1002/prot.22590.

DOI:10.1002/prot.22590
PMID:19787771
Abstract

The quantum mechanical-molecular mechanical (QM/MM) theory was applied to calculate accurate structural parameters, vibrational and optical spectra of bathorhodopsin (BATHO), one of the primary photoproducts of the functional cycle of the visual pigment rhodopsin (RHO), and to characterize reaction routes from RHO to BATHO. The recently resolved crystal structure of BATHO (PDBID: 2G87) served as an initial source of coordinates of heavy atoms. Protein structures in the ground electronic state and vibrational frequencies were determined by using the density functional theory in the PBE0/cc-pVDZ approximation for the QM part and the AMBER force field parameters in the MM part. Calculated and assigned vibrational spectra of both model protein systems, BATHO and RHO, cover three main regions referring to the hydrogen-out-of-plan (HOOP) motion, the C==C ethylenic stretches, and the C--C single-bond stretches. The S(0)-S(1) electronic excitation energies of the QM part, including the chromophore group in the field of the protein matrix, were estimated by using the advanced quantum chemistry methods. The computed structural parameters as well as the spectral bands match perfectly the experimental findings. A structure of the transition state on the S(0) potential energy surface for the ground electronic state rearrangement from RHO to BATHO was located proving a possible route of the thermal protein activation to the primary photoproduct.

摘要

量子力学-分子力学(QM/MM)理论被应用于计算视紫红质(RHO)功能循环的主要光产物之一——视紫红质(BATHO)的准确结构参数、振动和光学谱,并用于描述从 RHO 到 BATHO 的反应途径。最近解析的 BATHO 晶体结构(PDBID:2G87)作为重原子坐标的初始来源。通过使用 PBE0/cc-pVDZ 近似的密度泛函理论作为 QM 部分和 AMBER 力场参数作为 MM 部分,确定了基态电子结构和振动频率的蛋白质结构。计算和分配的两种模型蛋白质系统(BATHO 和 RHO)的振动光谱涵盖了三个主要区域,分别涉及氢出平面(HOOP)运动、C==C 烯伸缩和 C--C 单键伸缩。通过使用先进的量子化学方法,估算了包括蛋白质基质中发色团在内的 QM 部分的 S(0)-S(1)电子激发能。计算得到的结构参数和光谱带与实验结果完全吻合。在 RHO 到 BATHO 的基态电子重排的 S(0)势能面上定位了过渡态结构,证明了热蛋白激活到主要光产物的可能途径。

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