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首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Spectral tuning in visual pigments: An ONIOM(QM : MM) study on bovine rhodopsin and its mutants
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Spectral tuning in visual pigments: An ONIOM(QM : MM) study on bovine rhodopsin and its mutants

机译:视觉色素的光谱调谐:ONIOM(QM:MM)研究牛视紫红质及其突变体

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摘要

We have investigated geometries and excitation energies of bovine rhodopsin and some of its mutants by hybrid quantum, mechanical/molecular mechanical (QM/MM) calculations in ONIOM scheme, employing B3LYP and BLYP density functionals as well as DFTB method for the QM part and AMBER force field for the MM part. QM/MM geometries of the protonated Schiff-base 11-cis-retinal with B3LYP and DFTB are very similar to each other. TD-B3LYP/MM excitation energy calculations reproduce the experimental absorption maximum of 500 nm in the presence of native rhodopsin environment and predict spectral shifts due to mutations within 10 nm, whereas TD-BLYP/MM excitation energies have red-shift error of at least 50 nm. In the wild-type rhodopsin, Glu113 shifts the first excitation energy to blue and accounts for most of the shift found. Other amino acids individually contribute to the first excitation energy but their net effect is small. The electronic polarization effect is essential for reproducing experimental bond length alternation along the polyene chain in protonated Schiff-base retinal, which correlates with the computed first excitation energy. It also corrects the excitation energies and spectral shifts in mutants, more effectively for deprotonated Schiff-base retinal than for the protonated form. The protonation state and conformation of mutated residues affect electronic spectrum significantly. The present QM/MM calculations estimate not only the experimental excitation energies but also the source of spectral shifts in mutants.
机译:我们通过ONIOM方案中的混合量子,机械/分子机械(QM / MM)计算,利用B3LYP和BLYP密度函数以及DFTB方法对QM部分和AMBER进行了牛视紫红质及其某些突变体的几何构型和激发能的研究。 MM零件的力场。具有B3LYP和DFTB的质子化Schiff碱11-顺式视网膜的QM / MM几何形状非常相似。 TD-B3LYP / MM激发能的计算在存在天然视紫红质的环境下重现了500 nm的最大实验吸收值,并预测了由于10 nm内的突变而引起的光谱偏移,而TD-BLYP / MM激发能的红移误差至少为50纳米在野生型视紫红质中,Glu113将第一个激发能转换为蓝色,并解释了所发现的大部分转换。其他氨基酸分别贡献第一激发能,但是它们的净效应很小。电子极化效应对于在质子化席夫碱视网膜中沿多烯链复制实验键长变化至关重要,该变化与计算的第一激发能相关。它也纠正了突变体中的激发能和光谱偏移,对于去质子化的席夫碱视网膜而言,比对质子化形式更有效。质子化状态和突变残基的构象显着影响电子光谱。目前的QM / MM计算不仅估算了实验激发能,而且估算了突变体中光谱移动的来源。

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