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Axon tension regulates fasciculation/defasciculation through the control of axon shaft zippering

机译:轴突张力通过控制轴突拉链来调节絮凝/去屑

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摘要

While axon fasciculation plays a key role in the development of neural networks, very little is known about its dynamics and the underlying biophysical mechanisms. In a model system composed of neurons grown ex vivo from explants of embryonic mouse olfactory epithelia, we observed that axons dynamically interact with each other through their shafts, leading to zippering and unzippering behavior that regulates their fasciculation. Taking advantage of this new preparation suitable for studying such interactions, we carried out a detailed biophysical analysis of zippering, occurring either spontaneously or induced by micromanipulations and pharmacological treatments. We show that zippering arises from the competition of axon-axon adhesion and mechanical tension in the axons, and provide the first quantification of the force of axon-axon adhesion. Furthermore, we introduce a biophysical model of the zippering dynamics, and we quantitatively relate the individual zipper properties to global characteristics of the developing axon network. Our study uncovers a new role of mechanical tension in neural development: the regulation of axon fasciculation.>DOI:
机译:虽然轴突絮凝在神经网络的发展中起着关键作用,但对其动力学和潜在的生物物理机制知之甚少。在由从胚胎小鼠嗅觉上皮的外植体离体生长的神经元组成的模型系统中,我们观察到轴突通过其轴彼此动态相互作用,从而导致调节其束缚的拉链行为和拉链行为。利用适合研究此类相互作用的新制剂的优势,我们对拉链的生物物理分析进行了详细分析,该拉链是自发发生的或由显微操作和药物治疗引起的。我们显示,拉链起因于轴突-轴突粘附力和轴突中的机械张力的竞争,并提供了轴突-轴突粘附力的首次量化。此外,我们介绍了拉链动力学的生物物理模型,并将定量的拉链特性与发展中的轴突网络的整体特征联系起来。我们的研究揭示了机械张力在神经发育中的新作用:轴突束调节。> DOI:

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