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首页> 外文期刊>Biophysical Journal >Increased sensitivity and extended range of distance measurements in spin-labeled membrane proteins: Q-band double electron-electron resonance and nanoscale bilayers.
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Increased sensitivity and extended range of distance measurements in spin-labeled membrane proteins: Q-band double electron-electron resonance and nanoscale bilayers.

机译:自旋标记膜蛋白的灵敏度提高,距离测量的范围扩大:Q波段双电子电子共振和纳米级双层。

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摘要

We report a significant methodological advance in the application of double electron-electron resonance (DEER) spectroscopy to measure long-range distances in spin-labeled membrane proteins. In the pseudo two-dimensional environment of proteoliposomes, a steep intermolecular background shapes DEER signals leading to long accumulation times, complicating data analysis and reducing the maximal measurable distances from 70 A down to approximately 40-50 A. To eliminate these limitations, we took advantage of the homogeneity and monodispersity of a class of discoidal nanoscale phospholipid bilayers in conjunction with the micromolar DEER sensitivity at Q-band (34 GHz) microwave frequency. Spin-labeled mutants of the ABC transporter MsbA were functionally reconstituted at a ratio of one functional dimer per nanoscale apolipoprotein-bound bilayer (NABB). DEER echo intensities from NABB-reconstituted MsbA have linear baselines reflecting a three-dimensional spatial distribution. This results in an order-of-magnitude higher sensitivity at Q-band relative to proteoliposomes and restores the maximal observable distance effectively increasing experimental throughput. The advances described here set the stage for the use of DEER spectroscopy to analyze conformational dynamics of sample-limited eukaryotic membrane proteins.
机译:我们报告了在应用双电子电子共振(DEER)光谱学来测量自旋标记膜蛋白的远距离距离方面的重大方法学进展。在蛋白脂质体的伪二维环境中,陡峭的分子间背景形状DEER信号导致较长的累积时间,使数据分析复杂化,并将最大可测量距离从70 A降低到大约40-50A。为消除这些限制,我们采取了以下措施一类盘状纳米级磷脂双层的均质性和单分散性的优势,以及在Q波段(34 GHz)微波频率下的微摩尔DEER灵敏度。 ABC转运蛋白MsbA的自旋标记突变体按每纳米载脂蛋白结合双层(NABB)一个功能性二聚体的比例进行功能重建。来自NABB重组的MsbA的DEER回波强度具有反映三维空间分布的线性基线。相对于脂质体,这导致Q波段的灵敏度提高了一个数量级,并恢复了最大可观察距离,从而有效地提高了实验通量。本文所述的进展为使用DEER光谱分析样品受限的真核膜蛋白的构象动力学奠定了基础。

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