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双脉冲梯度弥散实验中表观隔室偏心度的各向同性度量。

Orientationally invariant metrics of apparent compartment eccentricity from double pulsed field gradient diffusion experiments.

机构信息

Center of Functionally Integrative Neuroscience (CFIN) and MINDLab, Clinical Institute, Aarhus University, Aarhus, Denmark; Department of Physics and Astronomy, Aarhus University, Aarhus, Denmark.

出版信息

NMR Biomed. 2013 Dec;26(12):1647-62. doi: 10.1002/nbm.2999. Epub 2013 Aug 23.

Abstract

Pulsed field gradient diffusion sequences (PFG) with multiple diffusion encoding blocks have been indicated to offer new microstructural tissue information, such as the ability to detect nonspherical compartment shapes in macroscopically isotropic samples, i.e. samples with negligible directional signal dependence on diffusion gradients in standard diffusion experiments. However, current acquisition schemes are not rotationally invariant in the sense that the derived metrics depend on the orientation of the sample, and are affected by the interplay of sampling directions and compartment orientation dispersion when applied to macroscopically anisotropic systems. Here we propose a new framework, the d-PFG 5-design, to enable rotationally invariant estimation of double wave vector diffusion metrics (d-PFG). The method is based on the idea that an appropriate orientational average of the signal emulates the signal from a powder preparation of the same sample, where macroscopic anisotropy is absent by construction. Our approach exploits the theory of exact numerical integration (quadrature) of polynomials on the rotation group, and we exemplify the general procedure with a set consisting of 60 pairs of diffusion wave vectors (the d-PFG 5-design) facilitating a theoretically exact determination of the fourth order Taylor or cumulant expansion of the orientationally averaged signal. The d-PFG 5-design is evaluated with numerical simulations and ex vivo high field diffusion MRI experiments in a nonhuman primate brain. Specifically, we demonstrate rotational invariance when estimating compartment eccentricity, which we show offers new microstructural information, complementary to that of fractional anisotropy (FA) from diffusion tensor imaging (DTI). The imaging observations are supported by a new theoretical result, directly relating compartment eccentricity to FA of individual pores.

摘要

具有多个扩散编码块的脉冲梯度扩散序列 (PFG) 已被表明能够提供新的微观结构组织信息,例如能够在宏观各向同性样品中检测非球形隔室形状的能力,即在标准扩散实验中,扩散梯度对信号的方向依赖性可忽略不计的样品。然而,当前的采集方案在旋转不变的意义上是不可旋转的,即所得到的度量取决于样品的方向,并且当应用于宏观各向异性系统时,受到采样方向和隔室方向分散的相互作用的影响。在这里,我们提出了一种新的框架,即 d-PFG 5 设计,以实现双波矢扩散度量 (d-PFG) 的旋转不变估计。该方法基于这样的想法,即信号的适当取向平均模拟来自相同样品的粉末制备的信号,通过构造不存在宏观各向异性。我们的方法利用了旋转群上多项式的精确数值积分(求积)理论,并用一组由 60 对扩散波矢(d-PFG 5 设计)组成的示例说明了一般过程,这有助于理论上精确确定取向平均信号的四阶泰勒或累积展开。d-PFG 5 设计通过数值模拟和非人类灵长类动物大脑的离体高场扩散 MRI 实验进行了评估。具体来说,当估计隔室偏心度时,我们证明了旋转不变性,我们表明隔室偏心度提供了新的微观结构信息,与扩散张量成像 (DTI) 的各向异性分数 (FA) 互补。成像观察得到了一个新的理论结果的支持,该结果直接将隔室偏心度与各个孔的 FA 相关联。

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