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Spatial calcium kinetics after a traumatic brain injury

机译:在创伤性脑损伤后的空间钙动力学

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Accurate modelling of intracellular calcium ion ( Ca2+) concentration evolution is valuable as it is known to rapidly increase during a Traumatic Brain Injury. In the work presented here, our older non-spatial model dealing with the effect of mechanical stress upon the Ca2+ transportation in a neuron is spatialized by considering the brain tissue as a solid continuum with the Ca2+ activity occurring at every material point. Starting with one-dimensional representation, the brain tissue geometry is progressively made realistic and under the action of pressure or kinematic impulses, the effect of dimensionality and material behaviour on the correlation between the stress and concomitant Ca2+ concentration is investigated. The spatial calcium kinetics model faithfully captures the experimental observations concerning the Ca2+ concentration, load rate, magnitude and duration and most importantly shows that the critical location for primary injury may not be the most important location as far as secondary injury is concerned.
机译:细胞内钙离子(Ca2 +)浓度进化的精确建模是有价值的,因为已知在创伤性脑损伤期间迅速增加。在这里呈现的工作中,通过将脑组织视为在每个物质点的CA2 +活性的固体连续中,通过将脑组织视为固体连续体,在这里呈现的较旧的非空间模型在神经元中的CA2 +运输上进行效果。从一维表示开始,脑组织几何形状在压力或运动脉冲的作用下逐渐进行,维度和材料行为对应力和伴随Ca2 +浓度之间的相关性的影响。空间钙动力学模型忠实地捕获关于CA2 +浓度,负荷率,幅度和持续时间的实验观察,最重要的是表明,就初步伤害而言,初级伤害的临界位置可能不是最重要的位置。

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