Predicting Mesoscopic Larmor Frequency Shifts in White Matter With Diffusion MRI-A Monte Carlo Study in Axonal Phantoms.

IF 2.7 4区 医学 Q2 BIOPHYSICS
Anders Dyhr Sandgaard, Sune Nørhøj Jespersen
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引用次数: 0

Abstract

Magnetic susceptibility MRI offers potential insights into the chemical composition and microstructural organization of tissue. However, estimating magnetic susceptibility in white matter is challenging due to anisotropic subvoxel Larmor frequency shifts caused by axonal microstructure relative to the B0 field orientation. Recent biophysical models have analytically described how axonal microstructure influences the Larmor frequency shifts, relating these shifts to a mesoscopically averaged magnetic field that depends on the axons' fiber orientation distribution function (fODF), typically estimated using diffusion MRI. This study is aimed at validating the use of MRI to estimate mesoscopic magnetic fields and determining whether diffusion MRI can faithfully estimate the orientation dependence of the Larmor frequency shift in realistic axonal microstructure. To achieve this, we developed a framework for performing Monte Carlo simulations of MRI signals in mesoscopically sized white matter axon substrates segmented with electron microscopy. Our simulations demonstrated that with careful experimental design, it is feasible to estimate mesoscopic magnetic fields. Additionally, the fODF estimated by the standard model of diffusion in white matter could predict the orientation dependence of the mesoscopic Larmor frequency shift. We also found that incorporating the intra-axonal axial kurtosis into the standard model could explain a significant amount of signal variance, thereby improving the estimation of the Larmor frequency shift. This factor should not be neglected when fitting the standard model.

利用弥散mri预测白质介观拉莫尔频移——轴突幻象的蒙特卡罗研究。
磁导率MRI为研究组织的化学成分和微观结构提供了潜在的见解。然而,由于相对于B0场取向的轴突微结构引起的亚体素拉莫尔频移的各向异性,估计白质的磁化率是具有挑战性的。最近的生物物理模型分析地描述了轴突微观结构如何影响拉莫尔频移,将这些频移与依赖于轴突纤维取向分布函数(fODF)的介观平均磁场联系起来,通常使用扩散MRI估计。本研究旨在验证使用MRI来估计介观磁场,并确定扩散MRI是否可以忠实地估计现实轴突微观结构中拉莫尔频移的方向依赖性。为了实现这一目标,我们开发了一个框架,用于在用电子显微镜分割的介尺度白质轴突底物中执行MRI信号的蒙特卡罗模拟。我们的模拟表明,通过精心的实验设计,介观磁场的估计是可行的。此外,白质扩散标准模型估计的fdf可以预测介观Larmor频移的取向依赖性。我们还发现,将轴突内轴向峰度纳入标准模型可以解释大量的信号方差,从而改进了Larmor频移的估计。在拟合标准模型时,不应忽略这个因素。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
NMR in Biomedicine
NMR in Biomedicine 医学-光谱学
CiteScore
6.00
自引率
10.30%
发文量
209
审稿时长
3-8 weeks
期刊介绍: NMR in Biomedicine is a journal devoted to the publication of original full-length papers, rapid communications and review articles describing the development of magnetic resonance spectroscopy or imaging methods or their use to investigate physiological, biochemical, biophysical or medical problems. Topics for submitted papers should be in one of the following general categories: (a) development of methods and instrumentation for MR of biological systems; (b) studies of normal or diseased organs, tissues or cells; (c) diagnosis or treatment of disease. Reports may cover work on patients or healthy human subjects, in vivo animal experiments, studies of isolated organs or cultured cells, analysis of tissue extracts, NMR theory, experimental techniques, or instrumentation.
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