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采用氦冷却样品和氮气驱动魔角旋转的低温动态核极化

Low-temperature dynamic nuclear polarization with helium-cooled samples and nitrogen-driven magic-angle spinning.

作者信息

Thurber Kent, Tycko Robert

机构信息

Laboratory of Chemical Physics, National Institute of Diabetes and Digestive and Kidney Diseases, National Institutes of Health, Bethesda, MD 20892-0520, United States.

Laboratory of Chemical Physics, National Institute of Diabetes and Digestive and Kidney Diseases, National Institutes of Health, Bethesda, MD 20892-0520, United States.

出版信息

J Magn Reson. 2016 Mar;264:99-106. doi: 10.1016/j.jmr.2016.01.011.

Abstract

We describe novel instrumentation for low-temperature solid state nuclear magnetic resonance (NMR) with dynamic nuclear polarization (DNP) and magic-angle spinning (MAS), focusing on aspects of this instrumentation that have not been described in detail in previous publications. We characterize the performance of an extended interaction oscillator (EIO) microwave source, operating near 264 GHz with 1.5 W output power, which we use in conjunction with a quasi-optical microwave polarizing system and a MAS NMR probe that employs liquid helium for sample cooling and nitrogen gas for sample spinning. Enhancement factors for cross-polarized (13)C NMR signals in the 100-200 range are demonstrated with DNP at 25K. The dependences of signal amplitudes on sample temperature, as well as microwave power, polarization, and frequency, are presented. We show that sample temperatures below 30K can be achieved with helium consumption rates below 1.3 l/h. To illustrate potential applications of this instrumentation in structural studies of biochemical systems, we compare results from low-temperature DNP experiments on a calmodulin-binding peptide in its free and bound states.

摘要

我们描述了用于具有动态核极化(DNP)和魔角旋转(MAS)的低温固态核磁共振(NMR)的新型仪器,重点关注该仪器中在以前的出版物中未详细描述的方面。我们表征了一种扩展相互作用振荡器(EIO)微波源的性能,该源在264 GHz附近工作,输出功率为1.5 W,我们将其与准光学微波极化系统以及使用液氦进行样品冷却和氮气进行样品旋转的MAS NMR探头结合使用。在25K下通过DNP证明了交叉极化(13)C NMR信号的增强因子在100 - 200范围内。给出了信号幅度对样品温度以及微波功率、极化和频率的依赖性。我们表明,氦气消耗率低于1.3 l/h时可以实现低于30K的样品温度。为了说明该仪器在生化系统结构研究中的潜在应用,我们比较了在游离态和结合态的钙调蛋白结合肽上进行的低温DNP实验的结果。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/01c2/4769783/ee0b4d893821/nihms755352f1.jpg

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