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莱茵衣藻光系统I反应中心的超快瞬态吸收研究。1. 光系统I中能量捕获和早期电子转移步骤的新解释。

Ultrafast transient absorption studies on Photosystem I reaction centers from Chlamydomonas reinhardtii. 1. A new interpretation of the energy trapping and early electron transfer steps in Photosystem I.

作者信息

Müller Marc G, Niklas Jens, Lubitz Wolfgang, Holzwarth Alfred R

机构信息

Max-Planck-Institut für Bioanorganische Chemie, Stiftstr 34-36, D-45470 Mülheim ad Ruhr, Germany.

出版信息

Biophys J. 2003 Dec;85(6):3899-922. doi: 10.1016/S0006-3495(03)74804-8.

Abstract

The energy transfer and charge separation kinetics in core Photosystem I (PSI) particles of Chlamydomonas reinhardtii has been studied using ultrafast transient absorption in the femtosecond-to-nanosecond time range. Although the energy transfer processes in the antenna are found to be generally in good agreement with previous interpretations, we present evidence that the interpretation of the energy trapping and electron transfer processes in terms of both kinetics and mechanisms has to be revised substantially as compared to current interpretations in the literature. We resolved for the first time i), the transient difference spectrum for the excited reaction center state, and ii), the formation and decay of the primary radical pair and its intermediate spectrum directly from measurements on open PSI reaction centers. It is shown that the dominant energy trapping lifetime due to charge separation is only 6-9 ps, i.e., by a factor of 3 shorter than assumed so far. The spectrum of the first radical pair shows the expected strong bleaching band at 680 nm which decays again in the next electron transfer step. We show furthermore that the early electron transfer processes up to approximately 100 ps are more complex than assumed so far. Several possibilities are discussed for the intermediate redox states and their sequence which involve oxidation of P700 in the first electron transfer step, as assumed so far, or only in the second electron transfer step, which would represent a fundamental change from the presently assumed mechanism. To explain the data we favor the inclusion of an additional redox state in the electron transfer scheme. Thus we distinguish three different redox intermediates on the timescale up to 100 ps. At this level no final conclusion as to the exact mechanism and the nature of the intermediates can be drawn, however. From comparison of our data with fluorescence kinetics in the literature we also propose a reversible first charge separation step which has been excluded so far for open PSI reaction centers. For the first time an ultrafast 150-fs equilibration process, occurring among exciton states in the reaction center proper, upon direct excitation of the reaction center at 700 nm, has been resolved. Taken together the data call for a fundamental revision of the present understanding of the energy trapping and early electron transfer kinetics in the PSI reaction center. Due to the fact that it shows the fastest trapping time observed so far of any intact PSI particle, the PSI core of C. reinhardtii seems to be best suited to further characterize the electron transfer steps and mechanisms in the reaction center of PSI.

摘要

利用飞秒到纳秒时间范围内的超快瞬态吸收技术,对莱茵衣藻核心光系统I(PSI)颗粒中的能量转移和电荷分离动力学进行了研究。尽管发现天线中的能量转移过程总体上与先前的解释一致,但我们提供的证据表明,与文献中目前的解释相比,在动力学和机制方面对能量捕获和电子转移过程的解释必须进行大幅修订。我们首次解析了:i)激发反应中心状态的瞬态差异光谱,以及ii)直接从开放PSI反应中心的测量中得到的初级自由基对的形成和衰减及其中间光谱。结果表明,由于电荷分离导致的主要能量捕获寿命仅为6 - 9皮秒,即比目前所假设的短3倍。第一个自由基对的光谱在680纳米处显示出预期的强漂白带,该漂白带在下一个电子转移步骤中再次衰减。我们还表明,直到大约100皮秒的早期电子转移过程比目前所假设的更为复杂。讨论了中间氧化还原状态及其序列的几种可能性,其中涉及到如目前所假设的在第一个电子转移步骤中P700的氧化,或者仅在第二个电子转移步骤中P700的氧化,这将代表与目前所假设机制的根本变化。为了解释这些数据,我们倾向于在电子转移方案中纳入一个额外的氧化还原状态。因此,在长达100皮秒的时间尺度上,我们区分出三种不同的氧化还原中间体。然而,在这个层面上,对于确切的机制和中间体的性质还无法得出最终结论。通过将我们的数据与文献中的荧光动力学进行比较,我们还提出了一个可逆的首次电荷分离步骤,这在之前对于开放PSI反应中心来说是被排除的。首次解析了在700纳米直接激发反应中心时,反应中心内激子态之间发生的超快150飞秒平衡过程。综合这些数据,需要对目前对PSI反应中心中能量捕获和早期电子转移动力学的理解进行根本性修订。由于莱茵衣藻的PSI核心显示出迄今为止在任何完整PSI颗粒中观察到的最快捕获时间,它似乎最适合进一步表征PSI反应中心中的电子转移步骤和机制。

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