Effects of Cell Density on Mechanical Properties of Alginate Hydrogel Tissue Scaffolds

Xiaoming Tian, Xiongbaio Chen
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引用次数: 10

Abstract

Cell-seeded hydrogel scaffolds have been widely used in various tissue engineering applications due to their excellent biocompatibility and biomimetic properties. One of the critical issues in successful use of hydrogel scaffolds is their mechanical properties. Since cells and hydrogels are physically different materials, the cells encapsulated in the hydrogels can change profoundly the mechanical properties of the hydrogel scaffolds. In this research, the effects of Schwann cell density on mechanical properties of alginate hydrogel scaffolds were investigated. It was found that increase of cell density decreases the strength of the scaffolds. It was also found that the Ogden model can best describe the mechanical properties of the scaffolds under the strain of 45% at varying cell densities. Based on the cell density-dependant mechanical properties, a simulation was performed to study the local stresses of on cells when cells are subjected to loading. Simulation shows that at the same strain, the stress concentration on cells decreases as the cell density increases. The experimental and simulation results obtained in this paper will allow one to rigorously design scaffolds with desired mechanical properties and provide a clue to avoid mechanical cell injury.
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细胞密度对海藻酸盐水凝胶组织支架力学性能的影响
细胞种子水凝胶支架由于具有良好的生物相容性和仿生性能,在各种组织工程中得到了广泛的应用。水凝胶支架能否成功应用的关键问题之一是其力学性能。由于细胞和水凝胶在物理上是不同的材料,被水凝胶包裹的细胞可以深刻地改变水凝胶支架的力学性能。本研究考察了雪旺细胞密度对海藻酸盐水凝胶支架力学性能的影响。细胞密度的增加会降低支架的强度。实验还发现,在应变为45%时,不同细胞密度下,Ogden模型最能描述支架的力学性能。基于细胞密度相关的力学特性,模拟研究了细胞受加载时的局部应力。模拟结果表明,在相同应变下,细胞上的应力集中随着细胞密度的增加而减小。本文的实验和仿真结果将为严格设计具有理想力学性能的支架提供依据,并为避免机械细胞损伤提供线索。
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