论文标题
在诱导光合细菌的完整细胞期间,封闭反应中心的簇相关簇
Correlated clusters of closed reaction centers during induction of intact cells of photosynthetic bacteria
论文作者
论文摘要
天线系统可吸收光并在光合生物体中传输激发能量到反应中心(RC)。随着发射的(细菌)叶绿素荧光与激发的光化学利用竞争,测得的荧光产率是通过天线中激发的迁移来告知的。在这项工作中,在光激发(诱导)和松弛(在黑暗中)中测量了与Rc的氧化二聚体(P+)的荧光产量,用于光合细菌的整个细胞Sphaeroides的整个细胞,缺乏c_2的c_2作为P+(mutant cyca)的天然电子供体,缺乏C_2。荧光产量与P+(闭合RC的部分)之间的关系显示出与标准的Joliot-Lavergne-Trissl模型的偏差:1)双曲线不是对称的,2)表现出滞后。这些现象源于荧光延迟相对于诱导和放松期间的P+动力学的差异,以及在诱导过程中封闭RCS的非随机分布的结构术语。实验发现得到了蒙特卡洛模拟的支持,以及基于天线中激发的随机行走近似的统计物理学结果。应用的数学处理表明了标准理论的概括,并为对荧光的长期动力学以及在光合生物体中有效的光收获和有效的光摄取之间的微妙控制以及平衡之间的平衡设定了阶段。
Antenna systems serve to absorb light and to transmit excitation energy to the reaction center (RC) in photosynthetic organisms. As the emitted (bacterio)chlorophyll fluorescence competes with the photochemical utilization of the excitation, the measured fluorescence yield is informed by the migration of the excitation in the antenna. In this work, the fluorescence yield concomitant with the oxidized dimer (P+) of the RC were measured during light excitation (induction) and relaxation (in the dark) for whole cells of photosynthetic bacterium Rhodobacter sphaeroides lacking cytochrome c_2 as natural electron donor to P+ (mutant cycA). The relationship between the fluorescence yield and P+ (fraction of closed RC) showed deviations from the standard Joliot-Lavergne-Trissl model: 1) the hyperbola is not symmetric and 2) exhibits hysteresis. These phenomena originate from the difference between the delays of fluorescence relative to P+ kinetics during induction and relaxation, and in structural terms from the non-random distribution of the closed RCs during induction. The experimental findings are supported by Monte Carlo simulations and by results from statistical physics based on random walk approximations of the excitation in the antenna. The applied mathematical treatment demonstrates the generalization of the standard theory and sets the stage for a more adequate description of the long-debated kinetics of fluorescence and of the delicate control and balance between efficient light harvest and photoprotection in photosynthetic organisms.