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Asymmetry of Radial and Symmetry of Tangential Neuronal Migration Pathways in Developing Human Fetal Brains

机译:发育中的胎儿大脑的径向不对称性和切向神经元迁移途径的对称性

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摘要

The radial and tangential neural migration pathways are two major neuronal migration streams in humans that are critical during corticogenesis. Corticogenesis is a complex process of neuronal proliferation that is followed by neuronal migration and the formation of axonal connections. Existing histological assessments of these two neuronal migration pathways have limitations inherent to microscopic studies and are confined to small anatomic regions of interest (ROIs). Thus, little evidence is available about their three-dimensional (3-D) fiber pathways and development throughout the entire brain. In this study, we imaged and analyzed radial and tangential migration pathways in the whole human brain using high-angular resolution diffusion MR imaging (HARDI) tractography. We imaged ten fixed, postmortem fetal (17 gestational weeks (GW), 18 GW, 19 GW, three 20 GW, three 21 GW and 22 GW) and eight in vivo newborn (two 30 GW, 34 GW, 35 GW and four 40 GW) brains with no neurological/pathological conditions. We statistically compared the volume of the left and right radial and tangential migration pathways, and the volume of the radial migration pathways of the anterior and posterior regions of the brain. In specimens 22 GW or younger, the volume of radial migration pathways of the left hemisphere was significantly larger than that of the right hemisphere. The volume of posterior radial migration pathways was also larger when compared to the anterior pathways in specimens 22 GW or younger. In contrast, no significant differences were observed in the radial migration pathways of brains older than 22 GW. Moreover, our study did not identify any significant differences in volumetric laterality in the tangential migration pathways. These results suggest that these two neuronal migration pathways develop and regress differently, and radial neuronal migration varies regionally based on hemispheric and anterior-posterior laterality, potentially explaining regional differences in the amount of excitatory neurons that migrate along the radial scaffold.
机译:径向和切向神经迁移途径是人类中两个主要的神经元迁移流,在皮质形成过程中至关重要。皮质发生是神经元增殖的复杂过程,随后是神经元迁移和轴突连接的形成。对这两种神经元迁移途径的现有组织学评估存在微观研究固有的局限性,并且仅限于感兴趣的小解剖区域(ROI)。因此,关于它们的三维(3-D)纤维通路和整个大脑发育的证据很少。在这项研究中,我们使用高角度分辨率扩散MR成像(HARDI)图像记录和分析了整个人脑中的径向和切向迁移路径。我们拍摄了十个固定的死后胎儿(孕17周,18 GW,19 GW,三个20 GW,三个21 GW和22 GW)和八个体内新生儿(两个30 GW,34 GW,35 GW和四个40 GW)没有神经/病理状况的大脑。我们在统计学上比较了左右径向和切向迁移路径的体积,以及大脑前后区域的径向迁移路径的体积。在22 GW或更年轻的标本中,左半球的径向迁移路径的体积显着大于右半球。与22 GW或更年轻的标本中的前路相比,后路径向迁移路径的体积也更大。相反,在22 GW以上的大脑的径向迁移途径中未观察到显着差异。此外,我们的研究未发现切向迁移途径中的体积侧向性有任何显着差异。这些结果表明,这两个神经元迁移途径的发展和退化是不同的,并且radial神经元迁移基于半球和前后侧向性而区域性变化,这可能解释了沿the骨迁移的兴奋性神经元数量的区域差异。

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