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使用β-位磷酸化的氮氧自由基实现电子顺磁共振(EPR)信号的位点特异性标记多样化。

Diversification of EPR signatures in Site Directed Spin Labeling using a β-phosphorylated nitroxide.

机构信息

Aix-Marseille Université, CNRS, BIP UMR 7281, 31 Chemin J. Aiguier, 13402 Marseille Cedex 20, France.

出版信息

Phys Chem Chem Phys. 2014 Mar 7;16(9):4202-9. doi: 10.1039/c3cp54816c.

Abstract

Site Directed Spin Labeling (SDSL) combined with EPR spectroscopy is a very powerful approach to investigate structural transitions in proteins in particular flexible or even disordered ones. Conventional spin labels are based on nitroxide derivatives leading to classical 3-line spectra whose spectral shapes are indicative of the environment of the labels and thus constitute good reporters of structural modifications. However, the similarity of these spectral shapes precludes probing two regions of a protein or two partner proteins simultaneously. To overcome the limitation due to the weak diversity of nitroxide label EPR spectral shapes, we designed a new spin label based on a β-phosphorylated nitroxide giving 6-line spectra. This paper describes the synthesis of this new spin label, its grafting at four different positions of a model disordered protein able to undergo an induced α-helical folding and its characterization by EPR spectroscopy. For comparative purposes, a classical nitroxide has been grafted at the same positions of the model protein. The ability of the new label to report on structural transitions was evaluated by analyzing the spectral shape modifications induced either by the presence of a secondary structure stabilizer (trifluoroethanol) or by the presence of a partner protein. Taken together the results demonstrate that the new phosphorylated label gives a very distinguishable signature which is able to report from subtle to larger structural transitions, as efficiently as the classical spin label. As a complementary approach, molecular dynamics (MD) calculations were performed to gain further insights into the binding process between the labeled NTAIL and PXD. MD calculations revealed that the new label does not disturb the interaction between the two partner proteins and reinforced the conclusion on its ability to probe different local environments in a protein. Taken together this study represents an important step forward in the extension of the panoply of SDSL-EPR approaches.

摘要

位点定向自旋标记(SDSL)与电子顺磁共振(EPR)光谱学相结合,是研究蛋白质结构转变的一种非常强大的方法,尤其适用于柔性甚至无序的蛋白质。传统的自旋标记基于氮氧化物衍生物,导致出现典型的 3 线谱,其谱形反映了标记的环境,因此是结构修饰的良好报告者。然而,这些谱形的相似性排除了同时探测蛋白质的两个区域或两个伴侣蛋白的可能性。为了克服由于氮氧化物标记 EPR 谱形的多样性较弱而导致的限制,我们设计了一种基于β-磷酸化氮氧化物的新型自旋标记,其产生 6 线谱。本文描述了这种新型自旋标记的合成、在能够经历诱导α-螺旋折叠的模型无序蛋白质的四个不同位置的接枝以及通过 EPR 光谱学的表征。为了进行比较,在模型蛋白质的相同位置接枝了一种经典的氮氧化物。通过分析存在二级结构稳定剂(三氟乙醇)或存在伴侣蛋白时诱导的光谱形状变化,评估了新型标记报告结构转变的能力。总之,结果表明,新型磷酸化标记提供了一种非常可区分的特征,能够像经典自旋标记一样有效地报告从细微到更大的结构转变。作为一种补充方法,进行了分子动力学(MD)计算,以深入了解标记的 NTAIL 和 PXD 之间的结合过程。MD 计算表明,新型标记不会干扰两个伴侣蛋白之间的相互作用,并加强了其在探测蛋白质中不同局部环境的能力的结论。总之,这项研究是 SDSL-EPR 方法扩展的重要一步。

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