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用于体内应用的空间定位分子间零量子相干光谱学。

Spatially localized intermolecular zero-quantum coherence spectroscopy for in vivo applications.

作者信息

Balla David Z, Melkus Gerd, Faber Cornelius

机构信息

Department of Experimental Physics 5, University of Würzburg, Würzburg, Germany.

出版信息

Magn Reson Med. 2006 Oct;56(4):745-53. doi: 10.1002/mrm.21007.

Abstract

Magnetic resonance spectroscopy (MRS) techniques that use the distant dipolar field (DDF) to locally refocus inhomogeneous line-broadening promise improved spectral resolution in spatially varying fields. We investigated three possible implementations of localized DDF spectroscopy. Theoretical analysis and phantom experiments at 17.6 T showed that only localization immediately prior to acquisition provides sufficient spatial selectivity and sensitivity for in vivo applications. Spectra from an (8 mm)(3) voxel of the rat brain were acquired in 25 min, and three major metabolites were resolved. In a tumor mouse model, DDF spectra with well-resolved lines can be obtained from significantly larger voxels compared to conventional localized spectroscopy. From an inhomogeneous voxel, improved spectral resolution can be obtained with DDF techniques when a sufficient number of increments are sampled along the second spectral dimension. With fewer increments, measurement time is significantly shortened, and DDF techniques can provide higher signal-to-noise ratio (SNR) efficiency.

摘要

利用远场偶极场(DDF)进行局部再聚焦以消除不均匀线展宽的磁共振波谱(MRS)技术有望在空间变化磁场中提高谱分辨率。我们研究了局部DDF波谱的三种可能实现方式。在17.6 T下的理论分析和体模实验表明,只有在采集前立即进行定位才能为体内应用提供足够的空间选择性和灵敏度。在25分钟内采集了大鼠脑内一个(8 mm)³体素的波谱,分辨出了三种主要代谢物。在肿瘤小鼠模型中,与传统局部波谱相比,使用DDF波谱能够从显著更大的体素中获得具有良好分辨谱线的波谱。对于不均匀体素,当沿第二谱维采样足够数量的增量时,采用DDF技术可以提高谱分辨率。增量较少时,测量时间会显著缩短,并且DDF技术可以提供更高的信噪比(SNR)效率。

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