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Random Walk Behavior of Migrating Cortical Interneurons in the Marginal Zone: Time-Lapse Analysis in Flat-Mount Cortex

机译:边缘区域内皮层神经元迁移的随机游走行为:平面安装皮质中的时移分析。

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摘要

Migrating neurons are thought to travel from their origin near the ventricle to distant territories along stereotypical pathways by detecting environmental cues in the extracellular milieu. Here, we report a novel mode of neuronal migration that challenges this view. We performed long-term, time-lapse imaging of medial ganglionic eminence (MGE)-derived cortical interneurons tangentially migrating in the marginal zone (MZ) in flat-mount cortices. We find that they exhibit a diverse range of behaviors in terms of the rate and direction of migration. Curiously, a predominant population of these neurons repeatedly changes its direction of migration in an unpredictable manner. Trajectories of migration vary from one neuron to another. The migration of individual cells lasts for long periods, sometimes up to 2 d. Theoretical analyses reveal that these behaviors can be modeled by a random walk. Furthermore, MZ cells migrate from the cortical subventricular zone to the cortical plate, transiently accumulating in the MZ. These results suggest that MGE-derived cortical interneurons, once arriving at the MZ, are released from regulation by guidance cues and initiate random walk movement, which potentially contributes to their dispersion throughout the cortex.
机译:通过检测细胞外环境中的环境线索,迁移神经元被认为从其起源于心室的地方沿定型途径向远处转移。在这里,我们报告了一种挑战这种观点的新型神经元迁移模式。我们对内侧神经节隆起(MGE)衍生的皮质中间神经元进行了定期的延时成像,这些神经元在切面固定皮质的边缘区(MZ)切向迁移。我们发现,它们在迁移速度和方向方面表现出各种各样的行为。奇怪的是,这些神经元的主要种群以一种无法预测的方式反复改变其迁移方向。从一个神经元到另一个神经元的迁移轨迹各不相同。单个细胞的迁移持续很长时间,有时长达2 d。理论分析表明,这些行为可以通过随机游走来建模。此外,MZ细胞从皮质脑室下区域迁移到皮质板,在MZ中暂时积累。这些结果表明,一旦到达MZ,源自MGE的皮质中间神经元便会通过引导线索从调节中释放出来,并引发随机游走运动,这可能有助于它们在整个皮质中的分散。

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