首页> 外文期刊>Acta biomaterialia >Continuum modeling of a neuronal cell under blast loading
【24h】

Continuum modeling of a neuronal cell under blast loading

机译:爆炸载荷下神经元细胞的连续模型

获取原文
获取原文并翻译 | 示例
           

摘要

Traumatic brain injuries have recently been put under the spotlight as one of the most important causes of accidental brain dysfunctions. Significant experimental and modeling efforts are thus underway to study the associated biological, mechanical and physical mechanisms. In the field of cell mechanics, progress is also being made at the experimental and modeling levels to better characterize many of the cell functions, including differentiation, growth, migration and death. The work presented here aims to bridge both efforts by proposing a continuum model of a neuronal cell submitted to blast loading. In this approach, the cytoplasm, nucleus and membrane (plus cortex) are differentiated in a representative cell geometry, and different suitable material constitutive models are chosen for each one. The material parameters are calibrated against published experimental work on cell nanoindentation at multiple rates. The final cell model is ultimately subjected to blast loading within a complete computational framework of fluid-structure interaction. The results are compared to the nanoindentation simulation, and the specific effects of the blast wave on the pressure and shear levels at the interfaces are identified. As a conclusion, the presented model successfully captures some of the intrinsic intracellular phenomena occurring during the cellular deformation under blast loading that potentially lead to cell damage. It suggests, more particularly, that the localization of damage at the nucleus membrane is similar to what has already been observed at the overall cell membrane. This degree of damage is additionally predicted to be worsened by a longer blast positive phase duration. In conclusion, the proposed model ultimately provides a new three-dimensional computational tool to evaluate intracellular damage during blast loading.
机译:最近,创伤性脑损伤已成为引起意外脑功能障碍的最重要原因之一。因此,正在进行大量的实验和建模工作,以研究相关的生物学,机械和物理机制。在细胞力学领域,还在实验和建模水平上取得进展,以更好地表征许多细胞功能,包括分化,生长,迁移和死亡。此处提出的工作旨在通过提出经受爆炸加载的神经元细胞的连续模型来桥接这两种努力。在这种方法中,细胞质,细胞核和膜(加上皮层)在代表性的细胞几何结构中有所区别,并为每种细胞选择不同的合适的材料本构模型。针对已发表的有关细胞纳米压痕的实验工作,以多种速率对材料参数进行了校准。最终的细胞模型最终在流体-结构相互作用的完整计算框架内经受爆炸冲击。将结果与纳米压痕模拟进行比较,并确定爆炸波对界面处压力和剪切水平的特定影响。结论是,提出的模型成功捕获了爆炸载荷下细胞变形过程中发生的潜在内在细胞内现象,这些现象可能导致细胞损伤。它更具体地表明,损伤在细胞核膜上的定位与在整个细胞膜上已经观察到的相似。此外,预计爆炸的正相持续时间越长,这种损害程度就会越严重。总之,所提出的模型最终提供了一种新的三维计算工具来评估爆炸加载过程中的细胞内损伤。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号