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Mathematical Modeling of Uniaxial Mechanical Properties of Collagen Gel Scaffolds for Vascular Tissue Engineering

机译:用于血管组织工程的胶原蛋白凝胶支架的单轴力学特性的数学建模

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摘要

Small diameter tissue-engineered arteries improve their mechanical and functional properties when they are mechanically stimulated. Applying a suitable stress and/or strain with or without a cycle to the scaffolds and cells during the culturing process resides in our ability to generate a suitable mechanical model. Collagen gel is one of the most used scaffolds in vascular tissue engineering, mainly because it is the principal constituent of the extracellular matrix for vascular cells in human. The mechanical modeling of such a material is not a trivial task, mainly for its viscoelastic nature. Computational and experimental methods for developing a suitable model for collagen gels are of primary importance for the field. In this research, we focused on mechanical properties of collagen gels under unconfined compression. First, mechanical viscoelastic models are discussed and framed in the control system theory. Second, models are fitted using system identification. Several models are evaluated and two nonlinear models are proposed: Mooney-Rivlin inspired and Hammerstein models. The results suggest that Mooney-Rivlin and Hammerstein models succeed in describing the mechanical behavior of collagen gels for cyclic tests on scaffolds (with best fitting parameters 58.3% and 75.8%, resp.). When Akaike criterion is used, the best is the Mooney-Rivlin inspired model.
机译:当机械刺激小直径组织工程动脉时,它们会改善其机械和功能特性。在培养过程中向支架和细胞施加合适的应力和/或应变(具有或不具有循环)取决于我们产生合适的机械模型的能力。胶原蛋白凝胶是血管组织工程中最常用的支架之一,主要是因为它是人血管细胞的细胞外基质的主要成分。这种材料的机械建模并不是一件容易的事,主要是因为它具有粘弹性。开发适用于胶原蛋白凝胶模型的计算和实验方法对该领域至关重要。在这项研究中,我们专注于无限制压缩下胶原蛋白凝胶的机械性能。首先,讨论了控制系统理论中的机械粘弹性模型并对其进行了框架化。其次,使用系统识别来拟合模型。评估了几种模型,并提出了两种非线性模型:Mooney-Rivlin启发式模型和Hammerstein模型。结果表明,Mooney-Rivlin和Hammerstein模型成功地描述了用于脚手架循环测试的胶原蛋白凝胶的力学行为(最佳拟合参数分别为58.3%和75.8%)。当使用Akaike标准时,最好的是Mooney-Rivlin启发的模型。

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