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使用恒定时间化学位移编码检测体内同核去耦质子核磁共振谱:CT-PRESS。

Detection of homonuclear decoupled in vivo proton NMR spectra using constant time chemical shift encoding: CT-PRESS.

作者信息

Dreher W, Leibfritz D

机构信息

Universität Bremen, Fachbereich 2 (Biologie/Chemie), Germany.

出版信息

Magn Reson Imaging. 1999 Jan;17(1):141-50. doi: 10.1016/s0730-725x(98)00156-8.

Abstract

A new pulse sequence, termed CT-PRESS, is presented, which allows the detection of in vivo 1H NMR spectra with effective homonuclear decoupling. A PRESS sequence with a short echo-time TE, used for spatial localization, is supplemented by an additional 180 degrees pulse. The temporal position of this 180 degree pulse is shifted within a series of experiments, while the time interval between signal excitation and detection is kept constant. CT-PRESS is a two-dimensional (2D) spectroscopic experiment as far as data acquisition and processing are concerned, although only diagonal signals are generated in the 2D spectrum. However, since the principle of constant time chemical shift encoding is used in the t1 domain, effective homonuclear decoupling is obtained by projecting the 2D spectrum onto the corresponding f1 axis. Thus, good spectral resolution and high signal-to-noise ratio are obtained. The main advantage, as compared to localized 2D J-resolved MRS, is that optimized experiments can be performed for coupled resonances of interest by choosing the sequence parameters dependent on the type of multiplets, the J-coupling constants and T2. Major fields of application will be parametric studies on coupled resonances, (e.g., T1, diffusion behavior or magnetization transfer) and/or the detection of spatial and temporal changes of metabolites with coupled spin systes.

摘要

本文介绍了一种名为CT-PRESS的新脉冲序列,它能够在有效同核去耦的情况下检测体内1H NMR谱。用于空间定位的具有短回波时间TE的PRESS序列,通过一个额外的180°脉冲进行补充。在一系列实验中,该180°脉冲的时间位置会发生偏移,而信号激发与检测之间的时间间隔保持恒定。就数据采集和处理而言,CT-PRESS是一种二维(2D)光谱实验,尽管在2D谱中仅生成对角信号。然而,由于在t1域中使用了等时化学位移编码原理,通过将2D谱投影到相应的f1轴上可实现有效的同核去耦。因此,可获得良好的光谱分辨率和高信噪比。与局部二维J分辨磁共振波谱相比,其主要优点在于,通过根据多重峰类型、J耦合常数和T2选择序列参数,能够针对感兴趣的耦合共振进行优化实验。主要应用领域将是对耦合共振进行参数研究(例如,T1、扩散行为或磁化传递)和/或检测具有耦合自旋系统的代谢物的空间和时间变化。

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