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绿色硫细菌埃氏原绿菌反应中心复合物中的激发态与俘获

Excited states and trapping in reaction center complexes of the green sulfur bacterium Prosthecochloris aestuarii.

作者信息

Neerken S, Permentier H P, Francke C, Aartsma T J, Amesz J

机构信息

Department of Biophysics, Huygens Laboratory, Leiden University, The Netherlands.

出版信息

Biochemistry. 1998 Jul 28;37(30):10792-7. doi: 10.1021/bi9806899.

Abstract

The excited states of bacteriochlorophyll (BChl) a were studied by pump-probe transient absorption spectroscopy in reaction center core (RCC), Fenna-Matthews-Olson (FMO) and FMO-RCC complexes of the green sulfur bacterium Prosthecochloris aestuarii. Excitation at 790 or 835 nm resulted in rapid equilibration of the energy between the BChl a molecules of the RCC complex: within 1 ps, most of the excitations had relaxed to the lowest energy level (835 nm), as a result of strong interactions between the BChls. Excitation of chlorophyll a 670 resulted in energy transfer to BChl a with a time constant of 1.2 ps, followed by thermal equilibration. Independent of the wavelength of excitation, the decay at 835 nm could be fitted with a time constant of about 25 ps, comparable to the 30 ps measured earlier with membrane fragments, which is ascribed to trapping in the reaction centers. Similar results were obtained with the FMO-RCC complex upon excitation at 835 or 670 nm, but the results upon 790 nm excitation were quite different. Again an equilibrium was rapidly reached, but now most of the excitations remained within the FMO complex, with a maximum bleaching at 813 nm, the same as observed in the isolated FMO. Even after 100 ps there was no bleaching at 835 nm and no evidence for charge separation. We conclude that there is no equilibration of the energy between the FMO and the RCC complex and that the efficiency of energy transfer from FMO to the reaction center core is low.

摘要

利用泵浦-探测瞬态吸收光谱法,研究了绿色硫细菌 aestuarii 的反应中心核心(RCC)、费纳-马修斯-奥尔森(FMO)和 FMO-RCC 复合物中细菌叶绿素(BChl)a 的激发态。在 790 或 835 nm 处激发导致 RCC 复合物的 BChl a 分子之间的能量快速平衡:在 1 ps 内,由于 BChls 之间的强相互作用,大部分激发态弛豫到最低能级(835 nm)。叶绿素 a 670 的激发导致能量以 1.2 ps 的时间常数转移到 BChl a,随后是热平衡。与激发波长无关,835 nm 处的衰减可以用约 25 ps 的时间常数拟合,这与早期用膜片段测得的 30 ps 相当,这归因于反应中心中的俘获。在 835 或 670 nm 激发时,FMO-RCC 复合物也得到了类似的结果,但在 790 nm 激发时的结果却大不相同。同样很快达到了平衡,但现在大部分激发态仍保留在 FMO 复合物内,在 813 nm 处有最大漂白,这与在分离的 FMO 中观察到的相同。即使在 100 ps 后,835 nm 处也没有漂白,也没有电荷分离的证据。我们得出结论,FMO 和 RCC 复合物之间不存在能量平衡,并且从 FMO 到反应中心核心的能量转移效率很低。

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