Premvardhan Lavanya, Papagiannakis Emmanouil, Hiller Roger G, van Grondelle Rienk
Department of Biophysics and Physics of Complex Systems, Division of Physics and Astronomy, Faculty of Sciences, Vrije Universiteit, De Boelelaan 1081, 1081 HV Amsterdam, The Netherlands.
J Phys Chem B. 2005 Aug 18;109(32):15589-97. doi: 10.1021/jp052027g.
Peridinin, the carotenoid in the peridinin chlorophyll a protein (PCP), was studied by Stark (electroabsorption) spectroscopy to determine the change in electrostatic properties produced on excitation within the absorption band, in methyl tetrahydrofuran (MeTHF) versus ethylene glycol (EG), at 77 K. Strikingly, a large change in the permanent dipole moment (|Deltamu|) was found between the ground state, S(0) (1(1)A(g)(-)), and the Franck-Condon region of the S(2) (1(1)B(u)(+)) excited state, in both MeTHF (22 D) and EG (approximately 27 D), thus revealing the previously unknown charge transfer (CT) character of this pi-pi transition in peridinin. Such a large |Deltamu| produced on excitation, we suggest, facilitates the bending of the lactone moiety, toward which charge transfer occurs, and the subsequent formation of the previously identified intramolecular CT (ICT) state at lower energy. This unexpectedly large S(2) dipole moment, which has not been predicted even from high-level electronic structure calculations, is supported by calculating the shift of the peridinin absorption band as a function of solvent polarity, using the experimentally derived result. Overall, the photoinduced charge transfer uncovered here is expected to affect the excited-state reactivity of peridinin and, within the protein, be important for efficient energy transfer from the carotenoid S(2) and S(1)/ICT states to the chlorophylls in PCP.
通过斯塔克(电吸收)光谱法研究了多甲藻黄素叶绿素a蛋白(PCP)中的类胡萝卜素——多甲藻黄素,以确定在77K下,在甲基四氢呋喃(MeTHF)和乙二醇(EG)中,吸收带内激发时产生的静电性质变化。令人惊讶的是,在基态S(0)(1(1)A(g)(-))和S(2)(1(1)B(u)(+))激发态的弗兰克-康登区域之间,在MeTHF(22 D)和EG(约27 D)中均发现了永久偶极矩(|Δμ|)的巨大变化,从而揭示了多甲藻黄素中这种π-π跃迁以前未知的电荷转移(CT)特性。我们认为,激发时产生的如此大的|Δμ|促进了内酯部分的弯曲,电荷向其转移,以及随后在较低能量下形成先前确定的分子内CT(ICT)态。通过使用实验得出的结果计算多甲藻黄素吸收带随溶剂极性的变化,支持了这种出乎意料的大S(2)偶极矩,即使从高水平电子结构计算中也未预测到。总体而言,此处发现的光诱导电荷转移预计会影响多甲藻黄素的激发态反应性,并且在蛋白质内部,对于从类胡萝卜素S(2)和S(1)/ICT态到PCP中叶绿素的有效能量转移很重要。