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光敏色素光激活过程中藻胆素的相对基态和激发态pKa值:一项计算研究

Relative ground and excited-state pKa values of phytochromobilin in the photoactivation of phytochrome: a computational study.

作者信息

Borg O Anders, Durbeej Bo

机构信息

Department of Quantum Chemistry, Uppsala University, Box 518, S-75120 Uppsala, Sweden.

出版信息

J Phys Chem B. 2007 Oct 4;111(39):11554-65. doi: 10.1021/jp0727953. Epub 2007 Sep 11.

Abstract

The conversion of the plant photoreceptor phytochrome from an inactive (Pr) to an active form (Pfr) is accomplished by a red-light induced Z --> E photoisomerization of its phytochromobilin chromophore. In recent years, the question whether the photoactivation involves a change in chromophore protonation state has been the subject of many experimental studies. Here, we have used quantum chemical methods to calculate relative ground and excited-state pKa values of the different pyrrole moieties of phytochromobilin in a protein-like environment. Assuming (based on experimental data) a Pr ZaZsZa chromophore and considering isomerizations at C15 and C5, it is found that moieties B and C are the strongest acids both in the ground state and in the bright first singlet excited state, which is rationalized in simple geometric and electronic terms. It is also shown that neither light absorption nor isomerization increases the acidity of phytochromobilin relative to the reference Pr state with all pyrrolenic nitrogens protonated. Hence, provided that the subset of chromophore geometries under investigation is biologically relevant, there appears to be no intrinsic driving force for a proton-transfer event. In a series of benchmark calculations, the performance of ab initio and time-dependent density functional theory methods for excited-state studies of phytochromobilin is evaluated in light of available experimental data.

摘要

植物光受体光敏色素从无活性形式(Pr)向活性形式(Pfr)的转变是通过其藻胆素发色团的红光诱导的Z→E光异构化来实现的。近年来,光激活是否涉及发色团质子化状态的变化这一问题一直是许多实验研究的主题。在这里,我们使用量子化学方法来计算在类蛋白质环境中藻胆素不同吡咯部分的相对基态和激发态pKa值。基于实验数据假设Pr ZaZsZa发色团,并考虑C15和C5处的异构化,发现在基态和明亮的第一单线态激发态中,部分B和C都是最强的酸,这可以用简单的几何和电子术语来解释。还表明,相对于所有吡咯氮质子化的参考Pr状态,光吸收和异构化都不会增加藻胆素的酸度。因此,假设所研究的发色团几何结构子集具有生物学相关性,则似乎不存在质子转移事件的内在驱动力。在一系列基准计算中,根据现有实验数据评估了用于藻胆素激发态研究的从头算和含时密度泛函理论方法的性能。

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