Debus R J, Feher G, Okamura M Y
Biochemistry. 1986 Apr 22;25(8):2276-87. doi: 10.1021/bi00356a064.
Reaction centers (RCs) from the photosynthetic bacterium Rhodopseudomonas sphaeroides R-26.1 were depleted of Fe by a simple procedure involving reversible dissociation of the H subunit. The resulting intact Fe-depleted RCs contained 0.1-0.2 Fe per RC as determined from atomic absorption and electron paramagnetic resonance (EPR) spectroscopy. Fe-depleted RCs that have no metal ion occupying the Fe site differed from native RCs in the following respects: (1) the rate of electron transfer from QA- to QB exhibited nonexponential kinetics with the majority of RCs having a rate constant slower by only a factor of approximately 2, (2) the efficiency of light-induced charge separation (DQA----D+QA-) produced by a saturating flash decreased to 63%, and (3) QA appeared readily reducible to QA2-. Various divalent metal ions were subsequently incorporated into the Fe site. The electron transfer characteristics of Fe-depleted RCs reconstituted with Fe2+, Mn2+, Co2+, Ni2+, Cu2+, and Zn2+ were essentially the same as those of native RCs. These results demonstrate that neither Fe2+ nor any divalent metal ion is required for rapid electron transfer from QA- to QB. However, the presence of a metal ion in the Fe site is necessary to establish the characteristic, native, electron-transfer properties of QA. The lack of a dominant role of Fe2+ or other divalent metals in the observed rate of electron transfer from QA- to QB suggests that a rate-limiting step (for example, a protonation event or a light-induced structural change) precedes electron transfer.
通过一个涉及H亚基可逆解离的简单程序,去除了光合细菌球形红假单胞菌R - 26.1的反应中心(RCs)中的铁。通过原子吸收和电子顺磁共振(EPR)光谱测定,所得完整的缺铁RCs每个RC含有0.1 - 0.2个铁原子。没有金属离子占据铁位点的缺铁RCs在以下方面与天然RCs不同:(1)从QA-到QB的电子转移速率呈现非指数动力学,大多数RCs的速率常数仅慢约2倍;(2)饱和闪光产生的光诱导电荷分离(DQA----D+QA-)效率降至63%;(3)QA似乎很容易还原为QA2-。随后将各种二价金属离子掺入铁位点。用Fe2+、Mn2+、Co2+、Ni2+、Cu2+和Zn2+重构的缺铁RCs的电子转移特性与天然RCs基本相同。这些结果表明,从QA-到QB的快速电子转移既不需要Fe2+也不需要任何二价金属离子。然而,铁位点中存在金属离子对于建立QA的特征性、天然电子转移特性是必要的。在观察到的从QA-到QB的电子转移速率中,Fe2+或其他二价金属缺乏主导作用,这表明在电子转移之前存在一个限速步骤(例如,质子化事件或光诱导的结构变化)。