Woodbury N W, Becker M, Middendorf D, Parson W W
Biochemistry. 1985 Dec 17;24(26):7516-21. doi: 10.1021/bi00347a002.
The absorption changes that occur in reaction centers of the photosynthetic bacterium Rhodopseudomonas sphaeroides during the initial photochemical electron-transfer reaction have been examined. Measurements were made between 740 and 1300 nm at 295 and 80 K by using a pulse-probe technique with 610-nm, 0.8-ps flashes. An excited singlet state of the bacteriochlorophyll dimer P* was found to give rise to stimulated emission with a spectrum similar to that determined previously for fluorescence from reaction centers. The stimulated emission was used to follow the decay of P*; its lifetime was 4.1 +/- 0.2 ps at 295 K and 2.2 +/- 0.1 ps at 80 K. Within the experimental uncertainty, the absorption changes associated with the formation of a bacteriopheophytin anion, Bph-, develop in concert with the decay of P* at both temperatures, as does the absorption increase near 1250 nm due to the formation of the cation of P, P+. No evidence was found for the formation of a bacteriochlorophyll anion, Bchl-, prior to the formation of Bph-. This is surprising, because in the crystal structure of the Rhodopseudomonas viridis reaction center [Deisenhofer, J., Epp, O., Miki, K., Huber, R., & Michel, H. (1984) J. Mol. Biol. 180, 385-398] a Bchl is located approximately in between P and the Bph. It is possible that Bchl- (or Bchl+) is formed but, due to kinetic or thermodynamic constraints, is never present at a sufficient concentration for us to observe. Alternatively, a virtual charge-transfer state, such as P+Bchl-Bph or PBchl+Bph-, could serve to lower the energy barrier for direct electron transfer between P* and the Bph.
已经对光合细菌球形红假单胞菌反应中心在初始光化学电子转移反应过程中发生的吸收变化进行了研究。通过使用610 nm、0.8 ps的脉冲探测技术,在295 K和80 K下于740至1300 nm之间进行了测量。发现细菌叶绿素二聚体P的激发单重态会产生受激发射,其光谱与先前测定的反应中心荧光光谱相似。利用受激发射来跟踪P的衰减;其寿命在295 K时为4.1±0.2 ps,在80 K时为2.2±0.1 ps。在实验误差范围内,与细菌脱镁叶绿素阴离子Bph-形成相关的吸收变化在两个温度下均与P的衰减同步发生,由于P的阳离子P+形成而在1250 nm附近的吸收增加也是如此。在Bph-形成之前未发现细菌叶绿素阴离子Bchl-形成的证据。这令人惊讶,因为在绿硫红假单胞菌反应中心的晶体结构中[戴森霍费尔,J.,埃普,O.米基,K.,胡贝尔,R.,&米歇尔,H.(1984年)《分子生物学杂志》180,385 - 398],一个Bchl大约位于P和Bph之间。有可能形成了Bchl-(或Bchl+),但由于动力学或热力学限制,其浓度从未达到足以让我们观察到的程度。或者,一种虚拟的电荷转移态,如P+Bchl-Bph或PBchl+Bph-,可能有助于降低P和Bph之间直接电子转移的能垒。