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用于稀生物固体的(19)F-(1)H NMR的低能探头。

Low-E probe for (19)F-(1)H NMR of dilute biological solids.

作者信息

Gor'kov Peter L, Witter Raiker, Chekmenev Eduard Y, Nozirov Farhod, Fu Riqiang, Brey William W

机构信息

National High Magnetic Field Laboratory, Tallahassee, FL 32310, USA.

出版信息

J Magn Reson. 2007 Dec;189(2):182-9. doi: 10.1016/j.jmr.2007.09.008. Epub 2007 Sep 18.

Abstract

Sample heating induced by radio frequency (RF) irradiation presents a significant challenge to solid state NMR experiments in proteins and other biological systems, causing the sample to dehydrate which may result in distorted spectra and a damaged sample. In this work we describe a large volume, low-E (19)F-(1)H solid state NMR probe, which we developed for the 2D (19)F CPMG studies of dilute membrane proteins in a static and electrically lossy environment at 600MHz field. In (19)FCPMG and related multi-pulse (19)F-(1)H experiments the sample is heated by the conservative electric fields E produced in the sample coil at both (19)F and (1)H frequencies. Instead of using a traditional sample solenoid, our low-E (19)F-(1)H probe utilizes two orthogonal loop-gap resonators in order to minimize the conservative electric fields responsible for sample heating. Absence of the wavelength effects in loop-gap resonators results in homogeneous RF fields and enables the study of large sample volumes, an important feature for the dilute protein preparations. The orthogonal resonators also provide intrinsic isolation between the (19)F and (1)H channels, which is another major challenge for the (19)F-(1)H circuits where Larmor frequencies are only 6% apart. We detail steps to reduce (19)F background signals from the probe, which included careful choice of capacitor lubricants and manufacture of custom non-fluorinated coaxial cables. Application of the probe for two-dimensional (19)F CPMG spectroscopy in oriented lipid membranes is demonstrated with Flufenamic acid (FFA), a non-steroidal anti-inflammatory drug.

摘要

射频(RF)辐照引起的样品加热对蛋白质和其他生物系统中的固态核磁共振实验构成了重大挑战,会导致样品脱水,进而可能导致光谱失真和样品损坏。在这项工作中,我们描述了一种大体积、低E的(19)F-(1)H固态核磁共振探头,它是我们为在600MHz场强下对静态且电损耗环境中的稀膜蛋白进行二维(19)F CPMG研究而开发的。在(19)F CPMG和相关的多脉冲(19)F-(1)H实验中,样品会被样品线圈中在(19)F和(1)H频率下产生的保守电场E加热。我们的低E(19)F-(1)H探头没有使用传统的样品螺线管,而是利用两个正交的环形间隙谐振器,以尽量减少导致样品加热的保守电场。环形间隙谐振器中不存在波长效应,可产生均匀的射频场,并能够研究大体积样品,这对于稀蛋白质制剂来说是一个重要特性。正交谐振器还在(19)F和(1)H通道之间提供了固有的隔离,这对于拉莫尔频率仅相差6%的(19)F-(1)H电路来说是另一个主要挑战。我们详细介绍了减少探头(19)F背景信号的步骤,包括仔细选择电容器润滑剂和制造定制的非氟化同轴电缆。用非甾体抗炎药氟芬那酸(FFA)展示了该探头在取向脂质膜中进行二维(19)F CPMG光谱分析的应用。

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