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叶绿素d主导的蓝细菌——滨海无叶绿素蓝细菌中细胞色素b6f与光系统I之间电子转移的热力学和动力学

The thermodynamics and kinetics of electron transfer between cytochrome b6f and photosystem I in the chlorophyll d-dominated cyanobacterium, Acaryochloris marina.

作者信息

Bailleul Benjamin, Johnson Xenie, Finazzi Giovanni, Barber James, Rappaport Fabrice, Telfer Alison

机构信息

Institut de Biologie Physico-Chimique, UMR 7141 CNRS-Université Paris 6, 13 Rue Pierre et Marie Curie, Paris 75005, France and the.

Division of Molecular Biosciences, Imperial College London, Biochemistry Building, South Kensington Campus, London SW7 2AZ, United Kingdom.

出版信息

J Biol Chem. 2008 Sep 12;283(37):25218-25226. doi: 10.1074/jbc.M803047200. Epub 2008 Jul 16.

Abstract

We have investigated the photosynthetic properties of Acaryochloris marina, a cyanobacterium distinguished by having a high level of chlorophyll d, which has its absorption bands shifted to the red when compared with chlorophyll a. Despite this unusual pigment content, the overall rate and thermodynamics of the photosynthetic electron flow are similar to those of chlorophyll a-containing species. The midpoint potential of both cytochrome f and the primary electron donor of photosystem I (P(740)) were found to be unchanged with respect to those prevailing in organisms having chlorophyll a, being 345 and 425 mV, respectively. Thus, contrary to previous reports (Hu, Q., Miyashita, H., Iwasaki, I. I., Kurano, N., Miyachi, S., Iwaki, M., and Itoh, S. (1998) Proc. Natl. Acad. Sci. U. S. A. 95, 13319-13323), the midpoint potential of the electron donor P(740) has not been tuned to compensate for the decrease in excitonic energy in A. marina and to maintain the reducing power of photosystem I. We argue that this is a weaker constraint on the engineering of the oxygenic photosynthetic electron transfer chain than preserving the driving force for plastoquinol oxidation by P(740), via the cytochrome b(6)f complex. We further show that there is no restriction in the diffusion of the soluble electron carrier between cytochrome b(6)f and photosystem I in A. marina, at variance with plants. This difference probably reflects the simplified ultrastructure of the thylakoids of this organism, where no segregation into grana and stroma lamellae is observed. Nevertheless, chlorophyll fluorescence measurements suggest that there is energy transfer between adjacent photosystem II complexes but not from photosystem II to photosystem I, indicating spatial separation between the two photosystems.

摘要

我们研究了蓝细菌——滨海栖热放线菌(Acaryochloris marina)的光合特性。该菌的特点是含有高水平的叶绿素d,与叶绿素a相比,其吸收带向红光方向偏移。尽管色素含量不同寻常,但光合电子流的总体速率和热力学性质与含叶绿素a的物种相似。细胞色素f和光系统I的初级电子供体(P(740))的中点电位与含叶绿素a的生物体中的电位相比没有变化,分别为345和425毫伏。因此,与之前的报道(Hu, Q., Miyashita, H., Iwasaki, I. I., Kurano, N., Miyachi, S., Iwaki, M., and Itoh, S. (1998) Proc. Natl. Acad. Sci. U. S. A. 95, 13319 - 13323)相反,电子供体P(740)的中点电位并未进行调整,以补偿滨海栖热放线菌中激子能量的降低并维持光系统I的还原能力。我们认为,与通过细胞色素b(6)f复合物保持P(740)对质体醌醇氧化的驱动力相比,这对产氧光合电子传递链工程的限制较弱。我们进一步表明,与植物不同,滨海栖热放线菌中可溶性电子载体在细胞色素b(6)f和光系统I之间的扩散没有限制。这种差异可能反映了该生物体类囊体超微结构的简化,在那里没有观察到类囊体堆叠和基质类囊体的区分。然而,叶绿素荧光测量表明,相邻的光系统II复合物之间存在能量转移,但不存在从光系统II到光系统I的能量转移,这表明两个光系统在空间上是分离的。

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