首页> 美国卫生研究院文献>Brain Connectivity >Investigating the Capability to Resolve Complex White Matter Structures with High b-Value Diffusion Magnetic Resonance Imaging on the MGH-USC Connectom Scanner
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Investigating the Capability to Resolve Complex White Matter Structures with High b-Value Diffusion Magnetic Resonance Imaging on the MGH-USC Connectom Scanner

机译:在MGH-USC Connectom扫描仪上研究具有高b值扩散磁共振成像的解析复杂白色物质结构的能力

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摘要

One of the major goals of the NIH Blueprint Human Connectome Project was to map and quantify the white matter connections in the brain using diffusion tractography. Given the prevalence of complex white matter structures, the capability of resolving local white matter geometries with multiple crossings in the diffusion magnetic resonance imaging (dMRI) data is critical. Increasing b-value has been suggested for delineation of the finer details of the orientation distribution function (ODF). Although increased gradient strength and duration increase sensitivity to highly restricted intra-axonal water, gradient strength limitations require longer echo times (TE) to accommodate the increased diffusion encoding times needed to achieve a higher b-value, exponentially lowering the signal-to-noise ratio of the acquisition. To mitigate this effect, the MGH-USC Connectom scanner was built with 300 mT/m gradients, which can significantly reduce the TE of high b-value diffusion imaging. Here we report comparisons performed across b-values based on q-ball ODF metrics to investigate whether high b-value diffusion imaging on the Connectom scanner can improve resolving complex white matter structures. The q-ball ODF features became sharper as the b-value increased, with increased power fraction in higher order spherical harmonic series of the ODF and increased peak heights relative to the overall size of the ODF. Crossing structures were detected in an increasingly larger fraction of white matter voxels and the spatial distribution of two-way and three-way crossing structures was largely consistent with known anatomy. Results indicate that dMRI with high diffusion encoding on the Connectom system is a promising tool to better characterize, and ultimately understand, the underlying structural organization and motifs in the human brain.
机译:NIH蓝图人类连接基因组计划的主要目标之一是使用扩散束摄影术绘制和量化大脑中的白质连接。考虑到复杂的白质结构的盛行,解决扩散磁共振成像(dMRI)数据中多个交叉点的局部白质几何形状的能力至关重要。已经建议增加b值来描述方向分布函数(ODF)的更详细信息。尽管增加的梯度强度和持续时间会增加对高度受限的轴突内部水的敏感性,但梯度强度限制需要更长的回波时间(TE)来适应增加的扩散编码时间,以获得更高的b值,从而成倍地降低信噪比。收购比例。为了减轻这种影响,MGH-USC Connectom扫描仪采用300 mT / m的梯度构建,可显着降低高b值扩散成像的TE。在这里,我们报告了基于q-ball ODF指标跨b值执行的比较,以研究Connectom扫描仪上的高b值扩散成像是否可以改善对复杂白质结构的解析。随着b值的增加,q球ODF的特征变得更加清晰,这是因为ODF的高阶球谐序列中的功率分数增加,并且相对于ODF的整体大小,峰高增加。在越来越多的白质体素中检测到交叉结构,双向和三向交叉结构的空间分布在很大程度上与已知的解剖结构一致。结果表明,在Connectom系统上具有高扩散编码的dMRI是一种有前途的工具,可以更好地表征并最终了解人脑中的潜在结构组织和基序。

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