Institut für Theoretische Physik, Johannes Kepler Universität Linz, Altenberger Strasse 69, Linz, Austria.
J Plant Physiol. 2011 Aug 15;168(12):1497-509. doi: 10.1016/j.jplph.2011.01.004. Epub 2011 Feb 16.
Excitation energy transfer in the light-harvesting complex II of higher plants is modeled using excitonic couplings and local transition energies determined from structure-based calculations recently (Müh et al., 2010). A theory is introduced that implicitly takes into account protein induced dynamic localization effects of the exciton wavefunction between weakly coupled optical and vibronic transitions of different pigments. Linear and non-linear optical spectra are calculated and compared with experimental data reaching qualitative agreement. High-frequency intramolecular vibrational degrees of freedom are found important for ultrafast subpicosecond excitation energy transfer between chlorophyll (Chl) b and Chla, since they allow for fast dissipation of the excess energy. The slower ps component of this transfer is due to the monomeric excited state of Chlb 605. The majority of exciton relaxation in the Chla spectral region is characterized by slow ps exciton equilibration between the Chla domains within one layer and between the lumenal and stromal layers in the 10-20ps time range. Subpicosecond exciton relaxation in the Chla region is only found within the terminal emitter domain (Chls a 610/611/612) and within the Chla 613/614 dimer. Deviations between measured and calculated exciton state life times are obtained for the intermediate spectral region between the main absorbance bands of Chla and Chlb that indicate that besides Chlb 608 another pigment should absorb there. Possible candidates, so far not identified by structure-based calculations, but by fitting of optical spectra and mutagenesis studies, are discussed. Additional mutagenesis studies are suggested to resolve this issue.
高等植物的捕光复合物 II 中的激发能转移是使用最近基于结构计算确定的激子耦合和局部跃迁能来模拟的(Müh 等人,2010)。引入了一种理论,该理论隐含地考虑了蛋白诱导的激子波函数在不同色素的弱耦合光学和振子跃迁之间的动态局部化效应。计算了线性和非线性光学光谱,并与实验数据进行了比较,达到了定性的一致。发现高频分子内振动自由度对于叶绿素(Chl)b 和 Chla 之间超快亚皮秒激发能转移很重要,因为它们允许快速耗散多余的能量。这种转移的较慢 ps 分量归因于 Chlb 605 的单体激发态。Chla 光谱区域中大部分激子弛豫的特征是在一个层内的 Chla 域之间以及腔室和基质层之间在 10-20ps 的时间范围内缓慢的 ps 激子平衡。仅在末端发射体域(Chls a 610/611/612)和 Chla 613/614 二聚体中发现 Chla 区域中的亚皮秒激子弛豫。在 Chla 和 Chlb 的主要吸收带之间的中间光谱区域中获得了测量和计算的激子态寿命之间的偏差,这表明除了 Chlb 608 之外,另一个色素应该在那里吸收。讨论了迄今尚未通过基于结构的计算确定但通过光学光谱拟合和诱变研究确定的可能的候选物。建议进行额外的诱变研究以解决此问题。