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首页> 外文期刊>NeuroImage: Clinical >Diffusion MRI connectometry automatically reveals affected fiber pathways in individuals with chronic stroke
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Diffusion MRI connectometry automatically reveals affected fiber pathways in individuals with chronic stroke

机译:扩散MRI连接测定法可自动揭示慢性中风患者的纤维通路

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摘要

Building a human connectome database has recently attracted the attention of many researchers, although its application to individual subjects has yet to be explored. In this study, we acquired diffusion spectrum imaging of 90 subjects and showed that this dataset can be used as a norm to examine pathways with deviant connectivity in individuals. This analytical approach, termed diffusion MRI connectometry, was realized by reconstructing patient data to a common stereotaxic space and calculating the percentile rank of the diffusion quantities with respect to those of the norm. The affected tracks were constructed with deterministic tractography using the local tract orientations with substantially low percentile ranks as seeds. To demonstrate the performance of the connectometry, we applied it to 7 patients with chronic stroke and compared the results with lesions shown on T 2 -weighted images, apparent diffusion coefficient (ADC) maps, and fractional anisotropy (FA) maps, as well as clinical manifestations. The results showed that the affected tracks revealed by the connectometry corresponded well with the stroke lesions shown on T 2 -weighted images. Moreover, while the T 2 -weighted images, as well as the ADC and FA maps, showed only the stroke lesions, connectometry revealed entire affected tracks, a feature that is potentially useful for diagnostic or prognostic evaluation. This unique capability may provide personalized information regarding the structural connectivity underlying brain development, plasticity, or disease in each individual subject. Highlights ? Diffusion MRI connectometry can identify tracks with decreased connectivity. ? T 2 -weighted images, and ADC, and FA maps show only the stroke lesions. ? Diffusion MRI connectometry reveals the entire affected pathways.
机译:建立人类连接组数据库最近吸引了许多研究人员的注意力,尽管它在各个主题中的应用尚待探索。在这项研究中,我们获得了90位受试者的扩散光谱成像,并表明该数据集可以用作检验个体中异常连接的途径的标准。这种分析方法称为扩散MRI连接测量法,是通过将患者数据重建到公共立体定位空间并计算扩散量相对于标准量的百分等级来实现的。受影响的轨道是使用确定性束线照相术构造的,使用百分位数排位很低的局部束取向作为种子。为了证明连接测量的性能,我们将其应用于7例慢性卒中患者,并将结果与​​T 2加权图像,表观扩散系数(ADC)图和分数各向异性(FA)图以及临床表现。结果表明,连接描记法揭示的受影响的轨迹与T 2加权图像上显示的中风病变非常吻合。此外,尽管T 2加权图像以及ADC和FA图仅显示了中风病变,但连接测量显示了整个受影响的轨迹,该功能可能对诊断或预后评估有用。这种独特的功能可以提供有关每个个体受试者大脑发育,可塑性或疾病背后的结构连通性的个性化信息。强调 ?扩散MRI连接测量法可以识别连接性降低的轨迹。 ? T 2加权图像以及ADC和FA图仅显示中风病变。 ?扩散MRI连接法揭示了整个受影响的途径。

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