Hess S, Akesson E, Cogdell R J, Pullerits T, Sundström V
Department of Chemical Physics, Lund University, Sweden.
Biophys J. 1995 Dec;69(6):2211-25. doi: 10.1016/S0006-3495(95)80137-2.
Energy transfer within the peripheral light-harvesting antenna of the purple bacteria Rhodobacter sphaeroides and Rhodopseudomonas palustris was studied by one- and two-color pump-probe absorption spectroscopy with approximately 100-fs tunable pulses at room temperature and at 77 K. The energy transfer from B800 to B850 occurs with a time constant of 0.7 +/- 0.05 ps at room temperature and 1.8 +/- 0.2 ps at 77 K and is similar in both species. Anisotropy measurements suggest a limited but fast B800 <--> B800 transfer time (tau approximately 0.3 ps). This is analyzed as incoherent hopping of the excitation in a system of spectrally inhomogeneous antenna pigment-protein complexes, by a master equation approach. The simulations show that the measured B800 dynamics is well described as energy transfer with a characteristic average nearest-neighbor pairwise transfer time of 0.35 ps among approximately 10 Bchl molecules in a circular arrangement, in good agreement with the recent high-resolution structure of LH2. The possible presence of fast intramolecular relaxation processes within the Bchl a molecule was investigated by measurement of time-resolved difference absorption spectra and kinetics of Bchl a in solution and in low-temperature glasses. From these measurements it is concluded that fast transients observed at room temperature are due mainly to solvation processes, whereas at 77 K predominantly slower (> 10-ps) relaxation occurs.
利用室温及77K下具有约100飞秒可调脉冲的单色和双色泵浦-探测吸收光谱,研究了球形红杆菌和沼泽红假单胞菌外周光捕获天线内的能量转移。从B800到B850的能量转移在室温下的时间常数为0.7±0.05皮秒,在77K下为1.8±0.2皮秒,且在这两个物种中相似。各向异性测量表明B800<-->B800的转移时间有限但很快(τ约为0.3皮秒)。通过主方程方法,将其分析为光谱不均匀的天线色素-蛋白质复合物系统中激发的非相干跳跃。模拟结果表明,所测得的B800动力学可以很好地描述为在圆形排列的约10个细菌叶绿素分子中,特征平均最近邻对转移时间为0.35皮秒的能量转移,这与最近LH2的高分辨率结构吻合良好。通过测量溶液和低温玻璃中细菌叶绿素a的时间分辨差分吸收光谱和动力学,研究了细菌叶绿素a分子内可能存在的快速分子内弛豫过程。从这些测量结果可以得出结论,室温下观察到的快速瞬态主要归因于溶剂化过程,而在77K时主要发生较慢(>10皮秒)的弛豫。