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蓝光感应类胡萝卜素结合(BLUF)结构域中的超快结构动力学:嗜盐红菌视黄醛结合蛋白A(AppA)及其突变体的瞬态红外光谱

Ultrafast structural dynamics in BLUF domains: transient infrared spectroscopy of AppA and its mutants.

作者信息

Stelling Allison L, Ronayne Kate L, Nappa Jérôme, Tonge Peter J, Meech Stephen R

机构信息

Department of Chemistry, Stony Brook University, Stony Brook, New York 11794-3400, USA.

出版信息

J Am Chem Soc. 2007 Dec 19;129(50):15556-64. doi: 10.1021/ja074074n. Epub 2007 Nov 22.

Abstract

The structural dynamics following photoexcitation of a photosensing BLUF (blue light sensing using FAD) domain protein have been investigated by ultrafast transient infrared spectroscopy. Specifically, the transcriptional antirepressor AppA from Rhodobacter sphaeroides has been studied in the light and dark adapted forms and in photoactive and inactive mutants W104F and Q63L. A transient absorption has been observed at 1666 cm(-1) which is a marker mode for the photoactive state of the protein. This instantaneously formed transient is tentatively assigned to a vibrational mode of a protein residue modified through its interaction with the excited state of the chromophore. A plausible candidate consistent with the mutant studies is the carbonyl stretch of the Q63 amide side chain. These results suggest that modification of the strength of protein chromophore H-bonded interactions is the primary step in the BLUF domain photocycle. No new species were observed to be formed during the first nanosecond. Measurement of the ultrafast ground state recovery showed that the excited state of light adapted AppA is strongly quenched compared to the dark adapted state. It is proposed that the reorganization which occurs to form the signaling state is favorable to electron-transfer quenching.

摘要

利用超快瞬态红外光谱研究了光传感BLUF(利用黄素腺嘌呤二核苷酸进行蓝光传感)结构域蛋白光激发后的结构动力学。具体而言,对来自球形红杆菌的转录抗阻遏蛋白AppA的光适应和暗适应形式以及光活性和非活性突变体W104F和Q63L进行了研究。在1666 cm(-1)处观察到一个瞬态吸收峰,这是该蛋白光活性状态的一个标记模式。这个瞬间形成的瞬态暂定为通过与发色团激发态相互作用而修饰的蛋白质残基的振动模式。与突变体研究结果相符的一个合理候选者是Q63酰胺侧链的羰基伸缩振动。这些结果表明,蛋白质发色团氢键相互作用强度的改变是BLUF结构域光循环的首要步骤。在最初的纳秒内未观察到新物种的形成。超快基态恢复的测量结果表明,与暗适应状态相比,光适应的AppA的激发态被强烈猝灭。有人提出,形成信号状态时发生的重组有利于电子转移猝灭。

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