首页> 外文期刊>Journal of the Royal Society Interface >Tissue loading and microstructure regulate the deformation of embedded nerve fibres: predictions from single-scale and multiscale simulations
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Tissue loading and microstructure regulate the deformation of embedded nerve fibres: predictions from single-scale and multiscale simulations

机译:组织加载和微观结构调节嵌入神经纤维的变形:从单尺度和多尺度模拟的预测

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摘要

Excessive deformation of nerve fibres (axons) in the spinal facet capsular ligaments (FCLs) can be a cause of pain. The axons are embedded in the fibrous extracellular matrix (ECM) of FCLs, so understanding how local fibre organization and micromechanics modulate their mechanical behaviour is essential. We constructed a computational discrete-fibre model of an axon embedded in a collagen fibre network attached to the axon by distinct fibre-axon connections. This model was used to relate the axonal deformation to the fibre alignment and collagen volume concentration of the surrounding network during transverse, axial and shear deformations. Our results showed that fibre alignment affects axonal deformation only during transverse and axial loading, but higher collagen volume concentration results in larger overall axonal strains for all loading cases. Furthermore, axial loading leads to the largest stretch of axonal microtubules and induces the largest forces on axon's surface in most cases. Comparison between this model and a multiscale continuum model for a representative case showed that although both models predicted similar averaged axonal strains, strain was more heterogeneous in the discrete-fibre model.
机译:神经纤维(轴突)在脊髓尖端囊韧带(FCLS)中过度变形可以是疼痛的原因。轴突嵌入FCLS的纤维细胞外基质(ECM)中,因此了解局部纤维组织和微机械方法如何调节其机械行为至关重要。我们通过独特的纤维轴突连接构建嵌入在附接到轴孔的胶原纤维网中的轴突的计算离散光纤模型。该模型用于在横向,轴向和剪切变形期间将轴向对准和周围网络的胶原变形和胶原体积浓度的轴向变形。我们的结果表明,纤维对准仅在横向和轴向载荷期间影响轴突变形,但胶原体积浓度较高导致所有装载案例的总体轴突菌株导致较大的整体轴突菌株。此外,轴向加载导致最大的轴突微管,在大多数情况下诱导轴突表面上的最大力。该模型与代表性案例的多尺度连续体模型的比较表明,尽管两个模型预测了类似平均轴突菌株,但在离散光纤模型中菌株更异。

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