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Towards Tuning the Mechanical Properties of Three-Dimensional Collagen Scaffolds Using a Coupled Fiber-Matrix Model

机译:使用耦合纤维矩阵模型来调整三维胶原蛋白支架的力学性能

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摘要

Scaffold mechanical properties are essential in regulating the microenvironment of three-dimensional cell culture. A coupled fiber-matrix numerical model was developed in this work for predicting the mechanical response of collagen scaffolds subjected to various levels of non-enzymatic glycation and collagen concentrations. The scaffold was simulated by a Voronoi network embedded in a matrix. The computational model was validated using published experimental data. Results indicate that both non-enzymatic glycation-induced matrix stiffening and fiber network density, as regulated by collagen concentration, influence scaffold behavior. The heterogeneous stress patterns of the scaffold were induced by the interfacial mechanics between the collagen fiber network and the matrix. The knowledge obtained in this work could help to fine-tune the mechanical properties of collagen scaffolds for improved tissue regeneration applications.
机译:支架的机械性能对于调节三维细胞培养的微环境至关重要。在这项工作中开发了一个耦合的纤维矩阵数值模型,用于预测胶原支架在不同水平的非酶促糖基化和胶原浓度下的机械反应。通过嵌入矩阵中的Voronoi网络模拟了支架。使用公开的实验数据验证了计算模型。结果表明,由胶原蛋白浓度调节的非酶促糖基化诱导的基质硬化和纤维网络密度都会影响支架行为。支架的异质应力模式是由胶原纤维网络和基质之间的界面力学引起的。在这项工作中获得的知识可能有助于微调胶原蛋白支架的机械性能,以改善组织再生应用。

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