Takeda Hironori, Kameo Yoshitaka, Adachi Taiji
Department of Micro Engineering, Graduate School of Engineering, Kyoto University, Kyoto, Japan.
Department of Biosystems Science, Institute for Frontier Life and Medical Sciences, Kyoto University, Kyoto, Japan.
Comput Methods Biomech Biomed Engin. 2021 May;24(7):799-805. doi: 10.1080/10255842.2020.1852554. Epub 2020 Dec 8.
For neuronal lamination during cerebral morphogenesis, later-born neurons must migrate through already-accumulated neurons. This neuronal migration is biochemically regulated by signaling molecules and mechanically affected by tissue deformation. To understand the neuronal lamination mechanisms, we constructed a continuum model of neuronal migration in a growing deformable tissue. We performed numerical analyses considering the migration promoted by signaling molecules and the tissue growth induced by neuron accumulation. The results suggest that the promoted migration and the space ensured by tissue growth are essential for neuronal lamination. The proposed model can describe the coupling of mechanical and biochemical mechanisms for neuronal lamination.
在大脑形态发生过程中进行神经元分层时,较晚生成的神经元必须穿过已经聚集的神经元。这种神经元迁移受到信号分子的生化调节,并受到组织变形的机械影响。为了理解神经元分层机制,我们构建了一个生长中可变形组织内神经元迁移的连续体模型。我们进行了数值分析,考虑了信号分子促进的迁移以及神经元聚集诱导的组织生长。结果表明,促进的迁移和组织生长确保的空间对于神经元分层至关重要。所提出的模型可以描述神经元分层的机械和生化机制的耦合。