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Increased Global and Local Efficiency of Human Brain Anatomical Networks Detected with FLAIR-DTI Compared to Non-FLAIR-DTI

机译:与非FLAIR-DTI相比用FLAIR-DTI检测到的人脑解剖网络的整体和局部效率提高

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摘要

Diffusion-weighted MRI (DW-MRI), the only non-invasive technique for probing human brain white matter structures in vivo, has been widely used in both fundamental studies and clinical applications. Many studies have utilized diffusion tensor imaging (DTI) and tractography approaches to explore the topological properties of human brain anatomical networks by using the single tensor model, the basic model to quantify DTI indices and tractography. However, the conventional DTI technique does not take into account contamination by the cerebrospinal fluid (CSF), which has been known to affect the estimated DTI measures and tractography in the single tensor model. Previous studies have shown that the Fluid-Attenuated Inversion Recovery (FLAIR) technique can suppress the contribution of the CSF to the DW-MRI signal. We acquired DTI datasets from twenty-two subjects using both FLAIR-DTI and conventional DTI (non-FLAIR-DTI) techniques, constructed brain anatomical networks using deterministic tractography, and compared the topological properties of the anatomical networks derived from the two types of DTI techniques. Although the brain anatomical networks derived from both types of DTI datasets showed small-world properties, we found that the brain anatomical networks derived from the FLAIR-DTI showed significantly increased global and local network efficiency compared with those derived from the conventional DTI. The increases in the network regional topological properties derived from the FLAIR-DTI technique were observed in CSF-filled regions, including the postcentral gyrus, periventricular regions, inferior frontal and temporal gyri, and regions in the visual cortex. Because brain anatomical networks derived from conventional DTI datasets with tractography have been widely used in many studies, our findings may have important implications for studying human brain anatomical networks derived from DW-MRI data and tractography.
机译:扩散加权MRI(DW-MRI)是唯一一种在体内探测人脑白质结构的非侵入性技术,已广泛用于基础研究和临床应用。许多研究已经利用扩散张量成像(DTI)和束线照相法,通过使用单个张量模型(量化DTI指数和束线照相的基本模型)来探索人脑解剖网络的拓扑特性。但是,传统的DTI技术没有考虑到脑脊液(CSF)的污染,已知这会影响单个张量模型中估计的DTI量度和束线图。先前的研究表明,流体衰减反转恢复(FLAIR)技术可以抑制CSF对DW-MRI信号的贡献。我们使用FLAIR-DTI和常规DTI(非FLAIR-DTI)技术从22个受试者中获取了DTI数据集,使用确定性束摄影术构建了大脑解剖网络,并比较了从这两种DTI类型派生的解剖网络的拓扑特性技术。尽管从这两种类型的DTI数据集派生的大脑解剖结构网络都显示了小世界的特性,但我们发现,与从常规DTI派生的大脑解剖结构网络相比,从FLAIR-DTI派生的大脑解剖结构网络显示出显着提高的全局和局部网络效率。在充满脑脊液的区域中观察到了从FLAIR-DTI技术获得的网络区域拓扑特性的增加,包括中央后回,脑室周围区域,额叶和颞下回以及视皮层区域。由于从常规DTI数据采集到的具有人体解剖学特征的脑解剖网络已被广泛用于许多研究中,因此我们的发现对于研究从DW-MRI数据和人体解剖学得出的人类大脑解剖学网络可能具有重要的意义。

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