Matsuki Yoh, Akutsu Hideo, Fujiwara Toshimichi
Division of Molecular Biophysics, Institute for Protein Research, Osaka University, 3-2 Yamadaoka, 565-0871, Suita, Japan.
J Magn Reson. 2003 May;162(1):54-66. doi: 10.1016/s1090-7807(02)00191-x.
Recoupling of homonuclear double quantum (DQ)-dipolar interactions is a useful technique for the structural analysis of molecules in solids. We have designed a series of elemental 0 degrees pulses for the recoupling sequences with the rf phase rotation about the z-axis, known as CN. The proposed 0 degrees pulses whose total flip angle >/=360 degrees provide spin rotation vectors in the xy-plane. Thus, the residual spin rotation can be canceled by rf phase rotation about the z-axis. An analysis by the coherent averaging theory showed that effective bandwidths of the recoupling sequences are limited not by the reduction in the dipolar scaling factor but by the increase in the residual spin rotation due to offset. A CN sequence with these elemental pulses provides an effective bandwidth of DQ-dipolar recoupling from ca. 0.5nu(R) to 4nu(R) for numerical simulations. Here, nu(R) is the sample spinning frequency. The 0 degrees pulses were applied to band-selective recoupling for the magnetization transfer in uniformly 13C-labeled molecules. Narrow-band recoupling enhances the magnetization transfer between spins within the effective range by decoupling the dipolar interactions between spins one of which is outside the range. The narrow band operation reduces rf field strength, which improves the CH decoupling. Increases in signal intensities by the use of the proposed 0 degrees pulses are experimentally shown for 13C-labeled amino acids.
同核双量子(DQ)-偶极相互作用的重新耦合是用于固体分子结构分析的一种有用技术。我们设计了一系列用于重新耦合序列的基本0度脉冲,其射频相位围绕z轴旋转,即所谓的CN序列。所提出的总翻转角≥360度的0度脉冲在xy平面中提供自旋旋转矢量。因此,剩余的自旋旋转可以通过围绕z轴的射频相位旋转来消除。通过相干平均理论分析表明,重新耦合序列的有效带宽不是受偶极缩放因子减小的限制,而是受由于偏移导致的剩余自旋旋转增加的限制。具有这些基本脉冲的CN序列在数值模拟中提供了从约0.5ν(R)到4ν(R)的DQ-偶极重新耦合的有效带宽。这里,ν(R)是样品自旋频率。这些0度脉冲被应用于均匀13C标记分子中用于磁化转移的带选择性重新耦合。窄带重新耦合通过解耦有效范围之外的一个自旋与范围内的自旋之间的偶极相互作用,增强了有效范围内自旋之间的磁化转移。窄带操作降低了射频场强,这改善了CH去耦。实验表明,对于13C标记的氨基酸,使用所提出的0度脉冲会使信号强度增加。