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鱼腥藻感光视紫红质的光致变色现象。

Photochromism of Anabaena sensory rhodopsin.

作者信息

Kawanabe Akira, Furutani Yuji, Jung Kwang-Hwan, Kandori Hideki

机构信息

Department of Materials Science and Engineering, Nagoya Institute of Technology, Showa-ku, Nagoya 466-8555, Japan.

出版信息

J Am Chem Soc. 2007 Jul 11;129(27):8644-9. doi: 10.1021/ja072085a. Epub 2007 Jun 15.

Abstract

Protein-controlled photochemical reactions often mediate biological light-signal and light-energy conversions. Microbial rhodopsins possess all-trans or 13-cis retinal as the chromophore in the dark, and in the light-driven proton pump, bacteriorhodopsin (BR), the stable photoproduct at the end of the functional cycle of the all-trans form is 100% all-trans. In contrast, a microbial rhodopsin discovered in Anabaena PCC7120 is believed to function as a photochromic sensor. For Anabaena sensory rhodopsin (ASR), the photoreaction is expected to be not cyclic, but photochromic. The present low-temperature UV-visible spectroscopy of ASR indeed revealed that the stable photoproduct of the all-trans form in ASR is 100% 13-cis, and that of the 13-cis form is 100% all-trans. The complete photocycle for the proton pump in BR and the complete photochromism for the chromatic sensor of ASR are highly advantageous for their functions. Thus, the microbial rhodopsins have acquired unique photoreactions, in spite of their similar structures, during evolution.

摘要

蛋白质控制的光化学反应常常介导生物光信号和光能转换。微生物视紫红质在黑暗中以全反式或13-顺式视黄醛作为发色团,在光驱动质子泵细菌视紫红质(BR)中,全反式形式功能循环结束时的稳定光产物为100%全反式。相比之下,在鱼腥藻PCC7120中发现的一种微生物视紫红质被认为具有光致变色传感器的功能。对于鱼腥藻感光视紫红质(ASR),光反应预计不是循环的,而是光致变色的。目前对ASR的低温紫外可见光谱研究确实表明,ASR中全反式形式的稳定光产物为100% 13-顺式,13-顺式形式的稳定光产物为100%全反式。BR中质子泵的完整光循环以及ASR颜色传感器的完整光致变色对其功能极为有利。因此,尽管微生物视紫红质结构相似,但在进化过程中它们获得了独特的光反应。

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