Department of Physics, Indian Institute of Science, Bangalore 560012, India.
J Chem Phys. 2010 Apr 7;132(13):134501. doi: 10.1063/1.3336815.
Separated local field (SLF) spectroscopy is a powerful technique to measure heteronuclear dipolar couplings. The method provides site-specific dipolar couplings for oriented samples such as membrane proteins oriented in lipid bilayers and liquid crystals. A majority of the SLF techniques utilize the well-known Polarization Inversion Spin Exchange at Magic Angle (PISEMA) pulse scheme which employs spin exchange at the magic angle under Hartmann-Hahn match. Though PISEMA provides a relatively large scaling factor for the heteronuclear dipolar coupling and a better resolution along the dipolar dimension, it has a few shortcomings. One of the major problems with PISEMA is that the sequence is very much sensitive to proton carrier offset and the measured dipolar coupling changes dramatically with the change in the carrier frequency. The study presented here focuses on modified PISEMA sequences which are relatively insensitive to proton offsets over a large range. In the proposed sequences, the proton magnetization is cycled through two quadrants while the effective field is cycled through either two or four quadrants. The modified sequences have been named as 2(n)-SEMA where n represents the number of quadrants the effective field is cycled through. Experiments carried out on a liquid crystal and a single crystal of a model peptide demonstrate the usefulness of the modified sequences. A systematic study under various offsets and Hartmann-Hahn mismatch conditions has been carried out and the performance is compared with PISEMA under similar conditions.
分离局部场(SLF)光谱学是一种强大的技术,可用于测量异核偶极耦合。该方法为取向样品(例如在脂质双层和液晶中取向的膜蛋白)提供了特定于位置的偶极耦合。大多数 SLF 技术都利用了著名的极化反转魔角自旋交换(PISEMA)脉冲方案,该方案在哈特曼-哈恩匹配下在魔角下进行自旋交换。虽然 PISEMA 为异核偶极耦合提供了相对较大的比例因子和沿偶极维度的更好分辨率,但它也存在一些缺点。PISEMA 的主要问题之一是该序列对质子载体偏移非常敏感,并且测量的偶极耦合随载体频率的变化而剧烈变化。本研究重点介绍了相对不敏感于大范围质子偏移的改进的 PISEMA 序列。在提出的序列中,质子磁化通过两个象限循环,而有效场通过两个或四个象限循环。修改后的序列被命名为 2(n)-SEMA,其中 n 代表有效场循环通过的象限数量。在液晶和模型肽单晶上进行的实验证明了改进序列的有用性。在各种偏移量和哈特曼-哈恩失配条件下进行了系统研究,并在类似条件下与 PISEMA 进行了性能比较。