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绿色荧光蛋白中超快平行反应之间的平衡具有结构根源。

Balance between ultrafast parallel reactions in the green fluorescent protein has a structural origin.

作者信息

van Thor Jasper J, Ronayne Kate L, Towrie Michael, Sage J Timothy

机构信息

Division of Molecular Biosciences, Imperial College London, South Kensington Campus, London SW72AZ, United Kingdom.

出版信息

Biophys J. 2008 Aug;95(4):1902-12. doi: 10.1529/biophysj.108.129957. Epub 2008 May 9.

Abstract

The fluorescence photocycle of the green fluorescent protein is functionally dependent on the specific structural protein environment. A direct relationship between equilibrium protein side-chain conformation of glutamate 222 and reactivity is established, particularly the rate of ultrafast proton transfer reactions in the fluorescence photocycle. We show that parallel transformations in the photocycle have a structural origin, and we report on the vibrational properties of responsive amino acids on an ultrafast timescale. Blue excitation of GFP drives two parallel, excited-state deuteron transfer reactions with 10 ps and 75 ps time constants to the buried carboxylic acid side chain of glutamate 222 via a hydrogen-bonding network. Assignment of 1456 cm(-1) and 1441 cm(-1) modes to nu(sym) and assignment of 1564 cm(-1) and 1570 cm(-1) features to nu(asym) of E222 in the 10 ps and 75 ps components, respectively, was possible from the analysis of the transient absorption data of an E222D mutant and was consistent with photoselection measurements. In contrast to the wild-type, measurements of E222D can be described with only one difference spectrum, with the nu(sym) mode at 1435 cm(-1) and the nu(asym) mode at 1567 cm(-1), also correlating a large Deltanu(asym-sym) with slow excited-state proton transfer kinetics. Density Functional Theory calculations and published model compound and theoretical studies relate differences in Deltanu(asym-sym) to the strength and number of hydrogen-bonding interactions that are detected via equilibrium geometry and COO- stretching frequency differences of the carboxylate. The correlation of photocycle kinetics with side-chain conformation of the acceptor suggests that proton transfer from S205 to E222 controls the rate of the overall excited-state proton transfer process, which is consistent with recent theoretical predictions. Photoselection measurements show agreement for localized C=O vibrations of chromophore, Q69, and E222 with Density Functional Theory and ab initio calculations placed in the x-ray geometry and provide their vibrational response in the intermediates in the photocycle.

摘要

绿色荧光蛋白的荧光光循环在功能上依赖于特定的结构蛋白环境。建立了谷氨酸222的平衡蛋白侧链构象与反应性之间的直接关系,特别是荧光光循环中超快质子转移反应的速率。我们表明,光循环中的平行转变具有结构起源,并且我们报道了响应性氨基酸在超快时间尺度上的振动特性。绿色荧光蛋白的蓝光激发通过氢键网络驱动两个平行的、具有10皮秒和75皮秒时间常数的激发态氘转移反应,到达谷氨酸222的埋藏羧酸侧链。通过对E222D突变体的瞬态吸收数据进行分析,分别将1456厘米-1和1441厘米-1模式归属于E222在10皮秒和75皮秒组分中的对称伸缩振动,将1564厘米-1和1570厘米-1特征归属于不对称伸缩振动,这与光选择测量结果一致。与野生型不同,E222D的测量结果仅能用一个差谱来描述,对称伸缩振动模式在1435厘米-1,不对称伸缩振动模式在1567厘米-1,这也将大的不对称-对称伸缩振动频率差与缓慢的激发态质子转移动力学相关联。密度泛函理论计算以及已发表的模型化合物和理论研究将不对称-对称伸缩振动频率差的差异与通过羧酸盐的平衡几何结构和COO-伸缩频率差异检测到的氢键相互作用的强度和数量联系起来。光循环动力学与受体侧链构象的相关性表明,从S205到E222的质子转移控制着整个激发态质子转移过程的速率,这与最近的理论预测一致。光选择测量结果表明,发色团、Q69和E222的局域C=O振动与置于X射线几何结构中的密度泛函理论和从头计算结果一致,并提供了它们在光循环中间体中的振动响应。

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