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在基于T2*的钬负载微球定量分析中,快速成像探测(FID)采样优于自旋回波采样:理论与实验

FID sampling superior to spin-echo sampling for T2*-based quantification of holmium-loaded microspheres: theory and experiment.

作者信息

Seevinck Peter R, Seppenwoolde Jan-Henry, Zwanenburg Jaco J M, Nijsen Johannes F W, Bakker Chris J G

机构信息

Image Sciences Institute, Department of Radiology, University Medical Center Utrecht, The Netherlands.

出版信息

Magn Reson Med. 2008 Dec;60(6):1466-76. doi: 10.1002/mrm.21785.

Abstract

This work demonstrates both theoretically and experimentally that multiple gradient-echo sampling of free induction decay (MGEFID) is superior to MGE sampling of spin echo (MGESE) for T2*-based quantification of holmium-loaded microspheres (HoMS). An interleaved sampling strategy was applied in great detail to characterize the MR signal behavior of FID and SE signals of gels and perfused rabbit livers containing HoMS in great detail. Diffusion sensitivity was demonstrated for MGESE sampling, resulting in non-exponential signal decay on both sides of the SE peak and in an underestimation of the HoMS concentration. Other than MGESE sampling, MGEFID sampling was demonstrated to be insensitive to diffusion, to exhibit exponential signal decay, and to allow accurate T2*-based quantification of HoMS. Furthermore, a fit procedure was proposed extending the upper limit of quantifiable R2* relaxation rates to at least 1500 sec(-1). With this post-processing step incorporated, MGEFID was shown to correctly estimate the integral amount of inhomogeneously distributed HoMS in liver tissue, up to a clinically relevant limit. All experimental findings could be explained with the theory of nuclear magnetic resonance (NMR) signal behavior in magnetically inhomogeneous tissues. HoMS were shown to satisfy the static dephasing regime when investigated with MGEFID and to violate the static dephasing conditions for MGESE at longer echo times typically used in SE.

摘要

这项工作从理论和实验两方面证明,对于基于T2对含钬微球(HoMS)进行定量分析而言,自由感应衰减的多梯度回波采样(MGEFID)优于自旋回波的多梯度回波采样(MGESE)。采用了一种交错采样策略,详细表征了含HoMS的凝胶和灌注兔肝脏的FID和SE信号的磁共振信号行为。结果表明MGESE采样具有扩散敏感性,导致SE峰两侧信号呈非指数衰减,并低估了HoMS浓度。与MGESE采样不同,MGEFID采样对扩散不敏感,呈现指数信号衰减,并能基于T2对HoMS进行准确的定量分析。此外,还提出了一种拟合程序,将可量化的R2*弛豫率上限扩展至至少1500秒-1。纳入这一后处理步骤后,MGEFID能够正确估计肝组织中不均匀分布的HoMS的总量,直至达到临床相关极限。所有实验结果都可以用磁共振(NMR)信号在磁不均匀组织中的行为理论来解释。结果表明,在用MGEFID进行研究时,HoMS满足静态失相状态,而在SE通常使用的较长回波时间下,MGESE违反了静态失相条件。

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