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Extending electron paramagnetic resonance to nanoliter volume protein single crystals using a self-resonant microhelix

机译:使用自共振微螺旋将电子顺磁共振扩展到纳升体积的蛋白质单晶

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摘要

Electron paramagnetic resonance (EPR) spectroscopy on protein single crystals is the ultimate method for determining the electronic structure of paramagnetic intermediates at the active site of an enzyme and relating the magnetic tensor to a molecular structure. However, crystals of dimensions typical for protein crystallography (0.05 to 0.3mm) provide insufficient signal intensity. In this work, we present a microwave self-resonant microhelix for nanoliter samples that can be implemented in a commercial X-band (9.5 GHz) EPR spectrometer. The self-resonant microhelix provides a measured signal-to-noise improvement up to a factor of 28 with respect to commercial EPR resonators. This work opens up the possibility to use advanced EPR techniques for studying protein single crystals of dimensions typical for x-ray crystallography. The technique is demonstrated by EPR experiments on single crystal [FeFe]-hydrogenase (Clostridium pasteurianum; CpI) with dimensions of 0.3 mm by 0.1 mm by 0.1 mm, yielding a proposed g-tensor orientation of the Hox state.
机译:蛋白质单晶上的电子顺磁共振(EPR)光谱是确定酶活性位点上顺磁性中间体的电子结构并将磁张量与分子结构相关的最终方法。但是,蛋白质晶体学中典型尺寸(0.05至0.3mm)的晶体不能提供足够的信号强度。在这项工作中,我们提出了一种用于纳升样品的微波自共振微螺旋,可以在商业X波段(9.5 GHz)EPR光谱仪中实现。自谐振微螺旋线相对于商用EPR谐振器可提供高达28倍的测量信噪比改进。这项工作为使用先进的EPR技术研究X射线晶体学典型尺寸的蛋白质单晶提供了可能性。通过对尺寸为0.3 mm x 0.1 mm x 0.1 mm的单晶[FeFe]-氢化酶(Clostridium pasteurianum; CpI)进行的EPR实验证明了该技术,得出了建议的Hox状态的g张量取向。

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