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A stochastic framework to model axon interactions within growing neuronal populations

机译:建立神经元群体中轴突相互作用模型的随机框架

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摘要

The confined and crowded environment of developing brains imposes spatial constraints on neuronal cells that have evolved individual and collective strategies to optimize their growth. These include organizing neurons into populations extending their axons to common target territories. How individual axons interact with each other within such populations to optimize innervation is currently unclear and difficult to analyze experimentally in vivo. Here, we developed a stochastic model of 3D axon growth that takes into account spatial environmental constraints, physical interactions between neighboring axons, and branch formation. This general, predictive and robust model, when fed with parameters estimated on real neurons from the Drosophila brain, enabled the study of the mechanistic principles underlying the growth of axonal populations. First, it provided a novel explanation for the diversity of growth and branching patterns observed in vivo within populations of genetically identical neurons. Second, it uncovered that axon branching could be a strategy optimizing the overall growth of axons competing with others in contexts of high axonal density. The flexibility of this framework will make it possible to investigate the rules underlying axon growth and regeneration in the context of various neuronal populations.
机译:发展中的大脑在狭窄而拥挤的环境中对神经元细胞施加了空间限制,这些神经元细胞已经进化出了个体和集体策略来优化其生长。这些措施包括将神经元组织成将轴突延伸到共同目标区域的种群。目前尚不清楚个体轴突如何在此类群体中相互作用以优化神经支配,并且难以在体内进行实验分析。在这里,我们开发了一个3D轴突生长的随机模型,该模型考虑了空间环境限制,相邻轴突之间的物理相互作用以及分支形成。这个通用的,预测性的和鲁棒的模型在果蝇大脑的真实神经元上输入了估计的参数后,就可以研究轴突种群增长的机制原理。首先,它为遗传上相同的神经元群体中体内观察到的生长和分支模式的多样性提供了新颖的解释。第二,它揭示了轴突分支可能是优化轴突密度高的情况下与他人竞争的轴突整体生长的策略。该框架的灵活性将使研究各种神经元群体中轴突生长和再生的潜在规则成为可能。

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