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Tract Profiles of White Matter Properties: Automating Fiber-Tract Quantification

机译:白质属性的道简介:自动化光纤道量化

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摘要

Tractography based on diffusion weighted imaging (DWI) data is a method for identifying the major white matter fascicles (tracts) in the living human brain. The health of these tracts is an important factor underlying many cognitive and neurological disorders. In vivo, tissue properties may vary systematically along each tract for several reasons: different populations of axons enter and exit the tract, and disease can strike at local positions within the tract. Hence quantifying and understanding diffusion measures along each fiber tract (Tract Profile) may reveal new insights into white matter development, function, and disease that are not obvious from mean measures of that tract. We demonstrate several novel findings related to Tract Profiles in the brains of typically developing children and children at risk for white matter injury secondary to preterm birth. First, fractional anisotropy (FA) values vary substantially within a tract but the Tract FA Profile is consistent across subjects. Thus, Tract Profiles contain far more information than mean diffusion measures. Second, developmental changes in FA occur at specific positions within the Tract Profile, rather than along the entire tract. Third, Tract Profiles can be used to compare white matter properties of individual patients to standardized Tract Profiles of a healthy population to elucidate unique features of that patient's clinical condition. Fourth, Tract Profiles can be used to evaluate the association between white matter properties and behavioral outcomes. Specifically, in the preterm group reading ability is positively correlated with FA measured at specific locations on the left arcuate and left superior longitudinal fasciculus and the magnitude of the correlation varies significantly along the Tract Profiles. We introduce open source software for automated fiber-tract quantification (AFQ) that measures Tract Profiles of MRI parameters for 18 white matter tracts. With further validation, AFQ Tract Profiles have potential for informing clinical management and decision-making.
机译:基于扩散加权成像(DWI)数据的术式成像是一种用于识别人脑中主要白质束(束)的方法。这些道的健康是许多认知和神经系统疾病的重要因素。在体内,由于以下几个原因,组织特性可能会沿每个管道系统地变化:轴突的不同种群进入和离开管道,疾病会侵袭管道内的局部位置。因此,量化和理解沿着每个纤维束的扩散措施(“ Tract Profile”)可能会揭示出对白质发育,功能和疾病的新见解,这些见解从该纤维束的均值测量中并不明显。我们证明了几个与典型发展中儿童和有早产继发白质损伤危险的儿童的大脑中的Tract Profiles相关的新发现。首先,分数各向异性(FA)值在一个区域内有很大变化,但是Tract FA Profile在受试者之间是一致的。因此,“轨迹概况”包含的信息远远超过平均扩散测度。其次,FA的发育变化发生在“轨迹”内的特定位置,而不是整个通道。第三,Tract Profiles可用于比较单个患者的白质特征与健康人群的标准化Tract Profiles,以阐明该患者临床状况的独特特征。第四,Tract Profiles可用于评估白质特性与行为结果之间的关联。具体而言,在早产组中,阅读能力与在左弓形和左上纵向筋膜的特定位置处测得的FA呈正相关,并且相关的幅度沿Tract Profiles显着变化。我们推出了用于自动纤维束定量(AFQ)的开源软件,该软件可测量18个白质束的MRI参数的谱图。通过进一步的验证,AFQ领域概况具有为临床管理和决策提供依据的潜力。

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