Gor'kov Peter L, Chekmenev Eduard Y, Li Conggang, Cotten Myriam, Buffy Jarrod J, Traaseth Nathaniel J, Veglia Gianluigi, Brey William W
National High Magnetic Field Laboratory, Tallahassee, FL 32310, USA.
J Magn Reson. 2007 Mar;185(1):77-93. doi: 10.1016/j.jmr.2006.11.008. Epub 2006 Dec 14.
RF heating of solid-state biological samples is known to be a destabilizing factor in high-field NMR experiments that shortens the sample lifetime by continuous dehydration during the high-power cross-polarization and decoupling pulses. In this work, we describe specially designed, large volume, low-E 15N-1H solid-state NMR probes developed for 600 and 900 MHz PISEMA studies of dilute membrane proteins oriented in hydrated and dielectrically lossy lipid bilayers. The probes use an orthogonal coil design in which separate resonators pursue their own aims at the respective frequencies, resulting in a simplified and more efficient matching network. Sample heating at the 1H frequency is minimized by a loop-gap resonator which produces a homogeneous magnetic field B1 with low electric field E. Within the loop-gap resonator, a multi-turn solenoid closely matching the shape of the sample serves as an efficient observe coil. We compare power dissipation in a typical lossy bilayer sample in the new low-E probe and in a previously reported 15N-1H probe which uses a double-tuned 4-turn solenoid. RF loss in the sample is measured in each probe by observing changes in the 1H 360 degrees pulse lengths. For the same values of 1H B1 field, sample heating in the new probe was found to be smaller by an order of magnitude. Applications of the low-E design to the PISEMA study of membrane proteins in their native hydrated bilayer environment are demonstrated at 600 and 900 MHz.
在高场核磁共振实验中,固态生物样品的射频加热是一个不稳定因素,它会在高功率交叉极化和解耦脉冲期间通过持续脱水缩短样品寿命。在这项工作中,我们描述了专门设计的大体积、低E的15N - 1H固态核磁共振探头,这些探头是为在水合且有介电损耗的脂质双层中取向的稀膜蛋白的600和900 MHz PISEMA研究而开发的。这些探头采用正交线圈设计,其中单独的谐振器在各自频率上实现各自的目标,从而得到一个简化且更高效的匹配网络。通过环形间隙谐振器将1H频率下的样品加热降至最低,该谐振器能产生具有低电场E的均匀磁场B1。在环形间隙谐振器内,一个与样品形状紧密匹配的多匝螺线管用作高效观测线圈。我们比较了新型低E探头和先前报道的使用双调谐4匝螺线管的15N - 1H探头中典型有损双层样品的功耗。通过观察1H 360度脉冲长度的变化来测量每个探头中样品的射频损耗。对于相同的1H B1场值,发现新型探头中的样品加热小一个数量级。在600和900 MHz下展示了低E设计在天然水合双层环境中膜蛋白PISEMA研究中的应用。