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首页> 外文期刊>Journal of biomechanical engineering. >Modeling Skeletal Muscle Stress and Intramuscular Pressure: A Whole Muscle Active–Passive Approach
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Modeling Skeletal Muscle Stress and Intramuscular Pressure: A Whole Muscle Active–Passive Approach

机译:造型骨骼肌胁迫和肌内压力:整个肌肉有源被动方法

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Clinical treatments of skeletal muscle weakness are hindered by a lack of an approach to evaluate individual muscle force. Intramuscular pressure (IMP) has shown a correlation to muscle force in vivo, but patient to patient and muscle to muscle variability results in difficulty of utilizing IMP to estimate muscle force. The goal of this work was to develop a finite element model of whole skeletal muscle that can predict IMP under passive and active conditions to further investigate the mechanisms of IMP variability. A previously validated hypervisco-poroelastic constitutive approach was modified to incorporate muscle activation through an inhomogeneous geometry. Model parameters were optimized to fit model stress to experimental data, and the resulting model fluid pressurization data were utilized for validation. Model fitting was excellent (root-mean-square error or RMSE <1.5?kPa for passive and active conditions), and IMP predictive capability was strong for both passive (RMSE 3.5?mmHg) and active (RMSE 10?mmHg at in vivo lengths) conditions. Additionally, model fluid pressure was affected by length under isometric conditions, as increases in stretch yielded decreases in fluid pressurization following a contraction, resulting from counteracting Poisson effects. Model pressure also varied spatially, with the highest gradients located near aponeuroses. These findings may explain variability of in vivo IMP measurements in the clinic, and thus help reduce this variability in future studies. Further development of this model to include isotonic contractions and muscle weakness would greatly benefit this work.
机译:通过缺乏评估单个肌肉力的方法阻碍了骨骼肌软弱的临床治疗。肌内压力(IMP)显示与体内肌肉力的相关性,但患者患者和肌肉到肌肉可变性导致难以利用IMP估计肌肉力。这项工作的目标是开发一个有限元模型的全骨骼肌,可以预测被动和主动条件下的IMP,进一步研究IMP变异的机制。修饰先前验证的超透视孔弹性本构体术方法以使肌肉激活通过不均匀的几何形状。优化模型参数以适应模型应力对实验数据,并且使用所得的模型流体加压数据进行验证。型号拟合优异(根均方误差或用于被动和有源条件的RMSE <1.5?KPA),并且IMP预测能力对于被动(RMSE 3.5?MMHG)和有效(RMSE 10?MMHG在体内长度的RMSE 10?MMHG ) 状况。另外,模型流体压力在等距条件下长度受长度的影响,因为在收缩后,拉伸的屈服率随着流体加压的增加而降低,因此抵消了泊松效应。模型压力也在空间上变化,具有最高梯度位于邻近亚曲面附近。这些发现可以解释诊所中体内IMP测量的可变性,从而有助于降低未来研究的这种可变性。这种模型的进一步发展,包括等渗收缩和肌肉弱点将极大地使这项工作受益。

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