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通过预靶向共振的优化编码实现高效光谱成像。

Efficient spectroscopic imaging by an optimized encoding of pretargeted resonances.

作者信息

Zhang Zhiyong, Shemesh Noam, Frydman Lucio

机构信息

Department of Chemical Physics, Weizmann Institute of Science, Rehovot, 76100, Israel.

Department of Electronic Science, Xiamen University, Xiamen, Fujian, 361005, China.

出版信息

Magn Reson Med. 2017 Feb;77(2):511-519. doi: 10.1002/mrm.26161. Epub 2016 Feb 23.

Abstract

PURPOSE

A "relaxation-enhanced" (RE) approach to acquire in vivo localized spectra with flat baselines and good sensitivity has been recently proposed. As RE MR spectroscopy (MRS) targets a subset of a priori known resonances, new possibilities arise to acquire spectroscopic imaging data in faster, more efficient manners. This is hereby illustrated by Spectroscopically Encoded Chemical Shift Imaging (SECSI).

METHODS

SECSI delivers spectral/spatial correlations by collecting gradient echo trains whose timings are defined by the shifts of the resonances to be disentangled. Condition number considerations allow one to unravel these image contributions for various sites by a simple matrix inversion. The efficiency of the ensuing method is high enough to enable a sampling of additional spatial axes by means of their phase encoding in spin-echo trains.

RESULTS

The one-dimensional (1D) spectral / 2D spatial SECSI acquisitions were implemented on phantom, ex vivo, and in vivo models. In all cases, quality site-resolved images were obtained. The experimentally observed enhancements were consistent with theoretical signal-to-noise ratio derivations.

CONCLUSION

While still bound by MRSI's sensitivity limitations, a novel spectroscopic imaging protocol exploiting a priori information, selective excitations and multiple echo encodings, was proposed and demonstrated. The method is promising when dealing with high T / T2* ratios, sparse data, or hyperpolarization studies. Magn Reson Med 77:511-519, 2017. © 2016 International Society for Magnetic Resonance in Medicine.

摘要

目的

最近提出了一种“弛豫增强”(RE)方法,用于获取具有平坦基线和良好灵敏度的体内局部光谱。由于RE磁共振波谱(MRS)针对的是先验已知共振的一个子集,因此出现了以更快、更高效的方式获取光谱成像数据的新可能性。本文通过光谱编码化学位移成像(SECSI)对此进行说明。

方法

SECSI通过收集梯度回波序列来提供光谱/空间相关性,其时间由待分辨共振的位移定义。条件数的考虑允许通过简单的矩阵求逆来解开各个部位的这些图像贡献。后续方法的效率足够高,能够通过在自旋回波序列中对其相位编码来对额外的空间轴进行采样。

结果

在体模、离体和体内模型上实现了一维(1D)光谱/二维(2D)空间SECSI采集。在所有情况下,均获得了高质量的部位分辨图像。实验观察到的增强与理论信噪比推导一致。

结论

虽然仍受磁共振波谱成像(MRSI)灵敏度限制的约束,但提出并证明了一种利用先验信息、选择性激发和多重回波编码的新型光谱成像方案。该方法在处理高T/T2*比值、稀疏数据或超极化研究时很有前景。《磁共振医学》77:511 - 519, 2017。© 2016国际磁共振医学学会。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/03a4/5184843/972a456ea2a0/emss-69977-f001.jpg

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