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首页> 外文期刊>NeuroImage >Incorporating non-linear alignment and multi-compartmental modeling for improved human optic nerve diffusion imaging
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Incorporating non-linear alignment and multi-compartmental modeling for improved human optic nerve diffusion imaging

机译:改进的人视神经扩散成像的非线性对准和多隔室建模

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摘要

In vivo human optic nerve diffusion magnetic resonance imaging (dMRI) is technically challenging with two outstanding issues not yet well addressed: (i) non-linear optic nerve movement, independent of head motion, and (ii) effect from partial-volumed cerebrospinal fluid or interstitial fluid such as in edema. In this work, we developed a non-linear optic nerve registration algorithm for improved volume alignment in axial high resolution optic nerve dMRI. During eyes-closed dMRI data acquisition, optic nerve dMRI measurements by diffusion tensor imaging (DTI) with and without free water elimination (FWE), and by diffusion basis spectrum imaging (DBSI), as well as optic nerve motion, were characterized in healthy adults at various locations along the posterior-to-anterior dimension. Optic nerve DTI results showed consistent trends in microstructural parametric measurements along the posterior-to-anterior direction of the entire intraorbital optic nerve, while the anterior portion of the intraorbital optic nerve exhibited the largest spatial displacement. Multi-compartmental dMRI modeling, such as DTI with FWE or DBSI, was less subject to spatially dependent biases in diffusivity and anisotropy measurements in the optic nerve which corresponded to similar spatial distributions of the estimated fraction of isotropic diffusion components. DBSI results derived from our clinically feasible (similar to 10 min) optic nerve dMRI protocol in this study are consistent with those from small animal studies, which provides the basis for evaluating the utility of multi-compartmental dMRI modeling in characterizing coexisting pathophysiology in human optic neuropathies.
机译:在体内人类视神经扩散磁共振成像(DMRI)技术上挑战,两种出色的问题尚未充分解决:(i)非线性视神经运动,独立于头部运动,(ii)从部分体积脑脊液的影响或间质液,如水肿。在这项工作中,我们开发了一种用于轴向高分辨率视神经DMRI中的改进体积对准的非线性视神经注册算法。在眼睛闭合的DMRI数据采集期间,通过扩散张量成像(DTI)的视神经DMRI测量,并且通过扩散基谱成像(DBSI)以及视神经运动,以健康为特征成人在沿前往前尺寸的各个位置。视神经DTI结果表明,沿着整个胎肾上腺神经的后侧向前方向的微观结构参数测量的一致趋势,而胎肾上腺视神经的前部表现出最大的空间位移。多隔间DMRI建模,例如具有FWE或DBSI的DTI,对应于视神经中的漫射性和各向异性测量中的空间依赖性偏差,其对应于各向同性扩散组分的估计分数的类似空间分布。本研究中源自我们临床可行(类似于10分钟)视神经DMRI协议的DBSI结果与来自小动物研究的临床神经DMRI协议一致,这为评估了多级DMRI建模的效用,该依据在于在人类光学中表征共存的病理生理学时神经病。

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