论文标题

3D神经束模型对机械负荷的电力响应导致轴突损伤

Electro-mechanical response of a 3D nerve bundle model to mechanical loads leading to axonal injury

论文作者

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

论文摘要

目的:创伤性脑损伤和损害是死亡和残疾的主要原因。我们提出了一个神经束的3D完全耦合的电机械模型,以研究由于细胞水平的创伤引起的电生理障碍。 方法:耦合是基于使用有限元软件ABAQUS CAE 6.13-3基于神经电活动的热类比。该模型包括一个实时耦合,调制的阈值,用于尖峰激活和神经束中每个3层纤维的电特性的独立变化作为应变的函数。 结果:耦合电力机械模型的结果通过先前发表的轴突的实验结果验证。在这里,模拟了压缩和张力的病例,以在神经束的神经膜上诱导(轻度,中度和重度)损伤,该神经束由四个纤维制成。通过考虑完整的和创伤性神经膜的病例,研究了骨髓和无髓神经纤维的应变,压力分布和神经活性的变化。 结论:建立了一种完全耦合的电力建模方法,以提供对由于脑外伤引起的细胞水平上神经活动关键方面的见解。 意义:关键发现之一是由于机械诱导的电生理障碍,其对信号传递的影响,由于机械诱导的电生理障碍,残留应力和应变的3D分布。

Objective: Traumatic brain injuries and damage are major causes of death and disability. We propose a 3D fully coupled electro-mechanical model of a nerve bundle to investigate the electrophysiological impairments due to trauma at the cellular level. Methods: The coupling is based on a thermal analogy of the neural electrical activity by using the finite element software Abaqus CAE 6.13-3. The model includes a real-time coupling, modulated threshold for spiking activation and independent alteration of the electrical properties for each 3-layer fibre within a nerve bundle as a function of strain. Results: Results of the coupled electro-mechanical model are validated with previously published experimental results of damaged axons. Here, the cases of compression and tension are simulated to induce (mild, moderate and severe) damage at the nerve membrane of a nerve bundle, made of four fibres. Changes in strain, stress distribution, and neural activity are investigated for myelinated and unmyelinated nerve fibres, by considering the cases of an intact and of a traumatized nerve membrane. Conclusion: A fully coupled electro-mechanical modelling approach is established to provide insights into crucial aspects of neural activity at the cellular level due to traumatic brain injury. Significance: One of the key findings is the 3D distribution of residual stresses and strains at the membrane of each fibre due to mechanically induced electrophysiological impairments, and its impact on signal transmission.

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