首页> 外文期刊>Journal of chemical theory and computation: JCTC >Computational Study of Absorption Spectra of the Photoconvertible Fluorescent Protein EosFP in Different Protonation States
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Computational Study of Absorption Spectra of the Photoconvertible Fluorescent Protein EosFP in Different Protonation States

机译:不同质子化状态下光转换荧光蛋白EosFP吸收光谱的计算研究

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摘要

Absorption spectra of the green-to-red convertible fluorescent protein EosFP have been computed in a hybrid quantum mechanical/molecular mechanical (QM/MM) framework. The experimentally observed absorption maximum at ~390 nm is well reproduced by the protein with a neutral chromophore, and the anionic form is computed to absorb close to the experimentally determined maximum at ~500 nm. Absorption of a zwitterionic form is calculated to lie in the same spectral region; however, this species cannot be unambiguously assigned to the experimental spectra. Variation of the protonation states of residues surrounding the chromophore do not have significant impact on the positions of the absorption maxima. In particular, protonation of Glu212 leaves the calculated spectra largely unaffected. This is consistent with the spectra of the E212Q mutant, which differ from the wild-type spectra only in the intensities but not in the positions of the absorption bands.
机译:已在混合量子力学/分子机械(QM / MM)框架中计算了绿色至红色可转换荧光蛋白EosFP的吸收光谱。具有中性发色团的蛋白质可很好地再现实验观察到的在〜390 nm处的最大吸收值,并且计算阴离子形式可吸收接近实验确定的在〜500 nm处的最大吸收值。两性离子形式的吸收被计算为位于相同的光谱区域中。但是,该种类不能明确分配给实验光谱。生色团周围的残基的质子化状态的变化对吸收最大值的位置没有显着影响。特别是,Glu212的质子化使计算的光谱基本不受影响。这与E212Q突变体的光谱一致,该光谱与野生型光谱仅在强度上不同,而在吸收带的位置上没有区别。

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