Tal Assaf, Shapira Boaz, Frydman Lucio
Department of Chemical Physics, Weizmann Institute of Science, 76100 Rehovot, Israel.
J Magn Reson. 2005 Sep;176(1):107-14. doi: 10.1016/j.jmr.2005.05.009.
Ultrafast 2D NMR replaces the time-domain parametrization usually employed to monitor the indirect-domain spin evolution, with an equivalent encoding along a spatial geometry. When coupled to a gradient-assisted decoding during the acquisition, this enables the collection of complete 2D spectra within a single transient. We have presented elsewhere two strategies for carrying out the spatial encoding underlying ultrafast NMR: a discrete excitation protocol capable of imparting a phase-modulated encoding of the interactions, and a continuous protocol yielding amplitude-modulated signals. The former is general but has associated with it a number of practical complications; the latter is easier to implement but unsuitable for certain 2D NMR acquisitions. The present communication discusses a new protocol that incorporates attractive attributes from both alternatives, imparting a continuous spatial encoding of the interactions yet yielding a phase modulation of the signal. This in turn enables a number of basic experiments that have shown particularly useful in the context of in vivo 2D NMR, including 2D J-resolved and 2D H,H-COSY spectroscopies. It also provides a route to achieving sensitivity-enhanced acquisitions for other homonuclear correlation experiments, such as ultrafast 2D TOCSY. The main features underlying this new spatial encoding protocol are derived, and its potential demonstrated with a series of phase-modulated homonuclear single-scan 2D NMR examples.
超快二维核磁共振(NMR)用沿空间几何结构的等效编码取代了通常用于监测间接域自旋演化的时域参数化方法。当在采集过程中与梯度辅助解码相结合时,这使得能够在单个瞬态内采集完整的二维谱。我们在其他地方提出了两种用于实现超快核磁共振基础空间编码的策略:一种离散激发方案,能够对相互作用进行相位调制编码;另一种连续方案,产生幅度调制信号。前者具有通用性,但伴随着一些实际的复杂性;后者更易于实现,但不适用于某些二维核磁共振采集。本通讯讨论了一种新的方案,该方案融合了两种方案的吸引人的特性,对相互作用进行连续的空间编码,同时产生信号的相位调制。这反过来又使得一些基本实验成为可能,这些实验在体内二维核磁共振的背景下已证明特别有用,包括二维J分辨谱和二维氢氢化学位移相关谱(H,H-COSY)。它还为实现其他同核相关实验(如超快二维全相关谱(TOCSY))的灵敏度增强采集提供了一条途径。推导了这种新的空间编码方案的主要特征,并通过一系列相位调制的同核单扫描二维核磁共振示例展示了其潜力。