论文标题

神经束几何形状对神经释放评估的影响

Effects of nerve bundle geometry on neurotrauma evaluation

论文作者

Cinelli, Ilaria, Destrade, Michel, McHugh, Peter, Duffy, Maeve

论文摘要

目的:我们确认神经元结构的改变可以诱导神经系统的信号传播异常,如脑损伤所观察到的那样。在这里,我们研究了由骨髓神经纤维或无髓神经纤维制成的2个缩放神经束模型中神经元结构的几何变化和损害的影响。 方法:我们提出了神经束的3D有限元模型,结合了实时完整的机电耦合,升高激活的调制阈值以及每只光纤的电气特性的独立改变。然后,我们模拟机械压缩和张力,以在由4个纤维制成的神经束的膜上诱导损伤。我们通过考虑完整和创伤神经膜的病例来检查菌株和神经活动的变化。 结果:我们的结果表明,不髓纤维的应变和较低的电生理障碍比髓纤维,较大的束中的变形水平较高,并且较小的束中的电生理障碍较高。 结论:我们得出的结论是,髓磷脂的绝缘鞘会收缩束变形并散布束内部的塑性菌株,而较大的束变形比小束要多,并且小纤维在机械故障之前耐受较高的伸长率。

Objective: We confirm that alteration of a neuron structure can induce abnormalities in signal propagation for nervous systems, as observed in brain damage. Here, we investigate the effects of geometrical changes and damage of a neuron structure in 2 scaled nerve bundle models, made of myelinated nerve fibers or unmyelinated nerve fibers. Methods: We propose a 3D finite element model of nerve bundles, combining a real-time full electromechanical coupling, a modulated threshold for spiking activation, and independent alteration of the electrical properties for each fiber. We then simulate mechanical compression and tension to induce damage at the membrane of a nerve bundle made of 4 fibers. We examine the resulting changes in strain and neural activity by considering in turn the cases of intact and traumatized nerve membranes. Results: Our results show lower strain and lower electrophysiological impairments in unmyelinated fibers than in myelinated fibers, higher deformation levels in larger bundles, and higher electrophysiological impairments in smaller bundles. Conclusion: We conclude that the insulation sheath of myelin constricts the membrane deformation and scatters plastic strains within the bundle, that larger bundles deform more than small bundles, and that small fibers tolerate a higher level of elongation before mechanical failure.

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