Boichenko Vladimir A, Wang Jennifer M, Antón Josefa, Lanyi Janos K, Balashov Sergei P
Institute of Basic Biological Problems, Russian Academy of Sciences, Pushchino 142290, Russia.
Biochim Biophys Acta. 2006 Dec;1757(12):1649-56. doi: 10.1016/j.bbabio.2006.08.012. Epub 2006 Aug 30.
The recent discovery of a carotenoid light-harvesting antenna in xanthorhodopsin, a retinal-based proton pump in Salinibacter ruber, made use of photoinhibition of respiration in whole cells to obtain action spectra [Balashov et al. Science 309, (2005) 2061-2064]. Here we provide further details of this phenomenon, and compare action spectra in three different systems where carotenoids have different functions or efficiencies of light-harvesting. The kinetics of light-induced inhibition of respiration in Salinibacter ruber was determined with single short flashes, and the photochemical cross section of the photoreaction was estimated. These measurements confirm that the xanthorhodopsin complex includes no more than a few, and most likely only one, carotenoid molecule, which is far less than the core complex antenna of photosynthetic bacteria. Although the total cross-section of light absorption in the purple bacterium Rhodospirillum rubrum greatly exceeds that in Salinibacter, the cross-sections are roughly equivalent in the shared wavelength range. We show further that despite interaction of bacterioruberin with archaerhodopsin, another retinal-based proton pump, there is no significant energy transfer from this carotenoid. This emphasizes the uniqueness of the salinixanthin-retinal interaction in xanthorhodopsin, and indicates that bacterioruberin in Halorubrum species has a structural or photoprotective rather than energetic role.
最近在盐红菌(Salinibacter ruber)的视黄醛质子泵——黄视紫红质中发现了类胡萝卜素光捕获天线,该研究利用全细胞呼吸的光抑制作用来获得作用光谱[巴拉绍夫等人,《科学》309卷,(2005年)2061 - 2064页]。在此,我们提供这一现象的更多细节,并比较了三种不同系统中的作用光谱,在这些系统中类胡萝卜素具有不同的功能或光捕获效率。用单个短闪光测定了盐红菌中光诱导呼吸抑制的动力学,并估算了光反应的光化学截面。这些测量结果证实,黄视紫红质复合物包含不超过几个,很可能只有一个类胡萝卜素分子,这远少于光合细菌的核心复合物天线。尽管紫色细菌红螺菌(Rhodospirillum rubrum)的光吸收总截面大大超过盐红菌,但在共同的波长范围内,两者的截面大致相当。我们进一步表明,尽管细菌红素与另一种视黄醛质子泵古视紫红质相互作用,但该类胡萝卜素并没有显著的能量转移。这突出了黄视紫红质中盐藻黄素 - 视黄醛相互作用的独特性,并表明嗜盐红菌属中的细菌红素具有结构或光保护作用而非能量作用。