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光诱导的蓝藻感应视紫红质对色觉适应基因表达的调控。

Photo-induced regulation of the chromatic adaptive gene expression by Anabaena sensory rhodopsin.

机构信息

Division of Biological Science, Graduate School of Science, Nagoya University, Nagoya 464-8602, Japan.

出版信息

J Biol Chem. 2012 Sep 21;287(39):32485-93. doi: 10.1074/jbc.M112.390864. Epub 2012 Aug 7.

Abstract

Rhodopsin molecules are photochemically reactive membrane-embedded proteins, with seven transmembrane α-helices, which bind the chromophore retinal (vitamin A aldehyde). They are roughly divided into two groups according to their basic functions: (i) ion transporters such as proton pumps, chloride pumps, and cation channels; and (ii) photo-sensors such as sensory rhodopsin from microbes and visual pigments from animals. Anabaena sensory rhodopsin (ASR), found in 2003 in the cyanobacterium Anabaena PCC7120, is categorized as a microbial sensory rhodopsin. To investigate the function of ASR in vivo, ASR and the promoter sequence of the pigment protein phycocyanin were co-introduced into Escherichia coli cells with the reporter gene crp. The result clearly showed that ASR functions as a repressor of the CRP protein expression and that this is fully inhibited by the light activation of ASR, suggesting that ASR would directly regulate the transcription of crp. The repression is also clearly inhibited by the truncation of the C-terminal region of ASR, or mutations on the C-terminal Arg residues, indicating the functional importance of the C-terminal region. Thus, our results demonstrate a novel function of rhodopsin molecules and raise the possibility that the membrane-spanning protein ASR could work as a transcriptional factor. In the future, the ASR activity could be utilized as a tool for arbitrary protein expression in vivo regulated by visible light.

摘要

视紫红质分子是光化学反应性的膜嵌入蛋白,具有七个跨膜α螺旋,与发色团视黄醛(维生素 A 醛)结合。它们根据基本功能大致分为两类:(i)离子转运体,如质子泵、氯泵和阳离子通道;和(ii)光感受器,如微生物中的感觉视紫红质和动物中的视觉色素。蓝藻中的感应视紫红质(ASR)于 2003 年在蓝藻 Anabaena PCC7120 中发现,被归类为微生物感应视紫红质。为了研究 ASR 在体内的功能,将 ASR 和藻蓝蛋白的启动子序列与报告基因 crp 一起引入大肠杆菌细胞。结果清楚地表明,ASR 作为 CRP 蛋白表达的抑制剂发挥作用,并且 ASR 的光激活完全抑制了这种作用,表明 ASR 会直接调节 crp 的转录。ASR 的 C 末端区域的截断或 C 末端 Arg 残基的突变也明显抑制了抑制作用,表明 C 末端区域的功能重要性。因此,我们的结果证明了视紫红质分子的新功能,并提出了跨膜蛋白 ASR 可能作为转录因子发挥作用的可能性。将来,ASR 活性可以用作通过可见光调节体内任意蛋白质表达的工具。

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