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Structure of the Biliverdin Cofactor in the Pfr State of Bathy and Prototypical Phytochromes

机译:水和原型植物色素的Pfr状态下的Biliverdin辅因子的结构

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摘要

Phytochromes act as photoswitches between the red- and far-red absorbing parent states of phytochromes (Pr and Pfr). Plant phytochromes display an additional thermal conversion route from the physiologically active Pfr to Pr. The same reaction pattern is found in prototypical biliverdin-binding bacteriophytochromes in contrast to the reverse thermal transformation in bathy bacteriophytochromes. However, the molecular origin of the different thermal stabilities of the Pfr states in prototypical and bathy bacteriophytochromes is not known. We analyzed the structures of the chromophore binding pockets in the Pfr states of various bathy and prototypical biliverdin-binding phytochromes using a combined spectroscopic-theoretical approach. For the Pfr state of the bathy phytochrome from Pseudomonas aeruginosa, the very good agreement between calculated and experimental Raman spectra of the biliverdin cofactor is in line with important conclusions of previous crystallographic analyses, particularly the ZZEssa configuration of the chromophore and its mode of covalent attachment to the protein. The highly homogeneous chromophore conformation seems to be a unique property of the Pfr states of bathy phytochromes. This is in sharp contrast to the Pfr states of prototypical phytochromes that display conformational equilibria between two sub-states exhibiting small structural differences at the terminal methine bridges A-B and C-D. These differences may mainly root in the interactions of the cofactor with the highly conserved Asp-194 that occur via its carboxylate function in bathy phytochromes. The weaker interactions via the carbonyl function in prototypical phytochromes may lead to a higher structural flexibility of the chromophore pocket opening a reaction channel for the thermal (ZZE → ZZZ) Pfr to Pr back-conversion.
机译:植物色素可在吸收红色和远红色的植物色素母体状态(Pr和Pfr)之间充当光开关。植物的植物色素显示了从生理活性Pfr到Pr的附加热转化途径。在典型的结合胆绿素的细菌植物色素中发现了相同的反应模式,这与浴状细菌植物色素中的反向热转化相反。但是,原型和浴状细菌性植物色素中Pfr状态不同热稳定性的分子起源尚不清楚。我们使用组合的光谱理论方法分析了各种浴状和原型biliverdin结合植物色素的Pfr状态的发色团结合袋的结构。对于铜绿假单胞菌的水生植物色素的Pfr状态,biliverdin辅因子的计算拉曼光谱和实验拉曼光谱之间的良好一致性与先前晶体学分析的重要结论相符,尤其是发色团的ZZEssa构型及其共价连接方式对蛋白质。高度均质的生色团构象似乎是水系植物色素的Pfr状态的独特属性。这与典型的植物色素的Pfr状态形成鲜明对比,后者在两个亚状态之间显示构象平衡,在末端次甲基桥A-B和C-D处显示出很小的结构差异。这些差异可能主要源于辅因子与高度保守的Asp-194的相互作用,这种相互作用是通过其在浴状植物色素中的羧酸酯功能而发生的。在典型的植物色素中,通过羰基功能的较弱相互作用可能导致生色团口袋具有更高的结构柔性,从而打开了将热(ZZE→ZZZ)Pfr转化为Pr的反应通道。

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