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通过非均匀振荡梯度回波(NOGSE)NMR 探测扩散动力学来测量小隔室尺寸。

Measuring small compartment dimensions by probing diffusion dynamics via Non-uniform Oscillating-Gradient Spin-Echo (NOGSE) NMR.

机构信息

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

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

出版信息

J Magn Reson. 2013 Dec;237:49-62. doi: 10.1016/j.jmr.2013.09.009. Epub 2013 Sep 23.

Abstract

Noninvasive measurements of microstructure in materials, cells, and in biological tissues, constitute a unique capability of gradient-assisted NMR. Diffusion-diffraction MR approaches pioneered by Callaghan demonstrated this ability; Oscillating-Gradient Spin-Echo (OGSE) methodologies tackle the demanding gradient amplitudes required for observing diffraction patterns by utilizing constant-frequency oscillating gradient pairs that probe the diffusion spectrum, D(ω). Here we present a new class of diffusion MR experiments, termed Non-uniform Oscillating-Gradient Spin-Echo (NOGSE), which dynamically probe multiple frequencies of the diffusion spectral density at once, thus affording direct microstructural information on the compartment's dimension. The NOGSE methodology applies N constant-amplitude gradient oscillations; N-1 of these oscillations are spaced by a characteristic time x, followed by a single gradient oscillation characterized by a time y, such that the diffusion dynamics is probed while keeping (N-1)x+y≡TNOGSE constant. These constant-time, fixed-gradient-amplitude, multi-frequency attributes render NOGSE particularly useful for probing small compartment dimensions with relatively weak gradients - alleviating difficulties associated with probing D(ω) frequency-by-frequency or with varying relaxation weightings, as in other diffusion-monitoring experiments. Analytical descriptions of the NOGSE signal are given, and the sequence's ability to extract small compartment sizes with a sensitivity towards length to the sixth power, is demonstrated using a microstructural phantom. Excellent agreement between theory and experiments was evidenced even upon applying weak gradient amplitudes. An MR imaging version of NOGSE was also implemented in ex vivo pig spinal cords and mouse brains, affording maps based on compartment sizes. The effects of size distributions on NOGSE are also briefly analyzed.

摘要

对材料、细胞和生物组织中的微观结构进行非侵入性测量,是梯度辅助 NMR 的独特功能。Callaghan 开创的扩散-衍射磁共振方法证明了这种能力;利用探测扩散谱 D(ω)的恒定频率的振荡梯度对,振荡梯度自旋回波(OGSE)方法解决了观察衍射图案所需的高要求梯度幅度问题。在这里,我们提出了一类新的扩散磁共振实验,称为非均匀振荡梯度自旋回波(NOGSE),它可以同时动态探测扩散谱密度的多个频率,从而提供关于隔室尺寸的直接微观结构信息。NOGSE 方法应用 N 个恒定幅度梯度振荡;这些振荡中有 N-1 个以特征时间 x 间隔,然后是一个由时间 y 特征的单个梯度振荡,使得扩散动力学在保持(N-1)x+y≡TNOGSE 常数的情况下被探测。这些具有固定梯度幅度的恒时、多频特性使得 NOGSE 特别适用于探测具有相对较弱梯度的小隔室尺寸-减轻了与逐频探测 D(ω)或改变其他扩散监测实验中的弛豫权重相关的困难。给出了 NOGSE 信号的分析描述,并使用微观结构模型证明了该序列以六次方的灵敏度提取小隔室尺寸的能力。即使在施加弱梯度幅度时,理论和实验之间也表现出了极好的一致性。NOGSE 的磁共振成像版本也在离体猪脊髓和小鼠大脑中实现,提供了基于隔室尺寸的图谱。还简要分析了尺寸分布对 NOGSE 的影响。

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