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Embodiment guides motor and spinal circuit development in vertebrate embryo and fetus

机译:实施方式引导脊椎动物胚胎和胎儿的电动机和脊柱电路开发

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We investigated whether motor and spinal circuit development in vertebrates can be accounted for by the properties underlying embodiment. We ran computer simulations of zebrafish embryo, canine and human fetus models with biologically plausible musculoskeletal bodies and spinal neural network, and quantitatively characterized their embodiments and movements by analyzing inter-muscle connectivities. In computer simulations in the human and canine fetus models, we found that development of the embodiment causes changes in movements and increases their complexity, corresponding to the same manner as mammalian motor development. Further, we showed that interaction with the environment as structured by the embodiment can drive the self-organization of the spinal circuit and trigger important developmental motor transitions, which engender coordinated side-to-side alternating movements in the zebrafish embryo model and left-right alternation of the legs in the human fetus model. Our results suggest that embodiment possesses a multitude of regularities that can guide early development.
机译:我们调查是否马达和脊髓回路发展在脊椎动物可以通过下面的实施例中的属性来解释。我们跑斑马鱼胚胎,犬和人胎儿模型的计算机模拟与生物合理肌肉骨骼机构和脊柱神经网络,和定量通过分析肌间连接性,其特征在于它们的实施例和动作。在人和犬胎儿模型的计算机模拟中,我们发现本实施例的,发展引起变化的运动,并增加它们的复杂性,对应于相同的方式哺乳动物马达的发展。此外,我们展示了与环境的相互作用由该实施例作为构成能够驱动脊髓回路和触发重要的发育马达过渡,这产生在斑马鱼胚胎模型协调一侧到另一侧交替运动和左右的自组织在人类胎儿模型腿的交替。我们的研究结果表明,实施具有能够指导早期发展规律的,众说纷纭。

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