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Microstructure Imaging of Crossing (MIX) White Matter Fibers from diffusion MRI

机译:弥散MRI交叉(MIX)白色物质纤维的微结构成像

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摘要

Diffusion MRI (dMRI) reveals microstructural features of the brain white matter by quantifying the anisotropic diffusion of water molecules within axonal bundles. Yet, identifying features such as axonal orientation dispersion, density, diameter, etc., in complex white matter fiber configurations (e.g. crossings) has proved challenging. Besides optimized data acquisition and advanced biophysical models, computational procedures to fit such models to the data are critical. However, these procedures have been largely overlooked by the dMRI microstructure community and new, more versatile, approaches are needed to solve complex biophysical model fitting problems. Existing methods are limited to models assuming single fiber orientation, relevant to limited brain areas like the corpus callosum, or multiple orientations but without the ability to extract detailed microstructural features. Here, we introduce a new and versatile optimization technique (MIX), which enables microstructure imaging of crossing white matter fibers. We provide a MATLAB implementation of MIX, and demonstrate its applicability to general microstructure models in fiber crossings using synthetic as well as ex-vivo and in-vivo brain data.
机译:扩散MRI(dMRI)通过量化轴突束中水分子的各向异性扩散来揭示脑白质的微结构特征。然而,证明在复杂的白质纤维构型(例如交叉)中识别诸如轴突取向分散,密度,直径等特征是具有挑战性的。除了优化的数据采集和先进的生物物理模型外,使此类模型适合数据的计算程序也至关重要。但是,这些程序已被dMRI微结构社区广泛忽略,需要新的,更通用的方法来解决复杂的生物物理模型拟合问题。现有方法仅限于采用单纤维取向,与有限的大脑区域(如call体)或多个取向相关的模型,但无法提取详细的微结构特征。在这里,我们介绍了一种新的通用优化技术(MIX),它可以对交叉的白质纤维进行微结构成像。我们提供了MIX的MATLAB实现,并使用合成的以及离体和体内脑数据证明了其在纤维交叉中的一般微观结构模型的适用性。

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