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Force measurement study of engineered collagen-chitosan scaffold using Atomic Force Microscopy

机译:利用原子力显微镜对工程化胶原壳聚糖支架的力测量研究

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The structure and properties of scaffold are important in cell-based tissue engineering, especially the mechanical property. Here, we quantify the dynamic oscillatory mechanical behavior of two kinds of porous collagen/chitosan scaffolds. The Young's Modulus were measured in PBS using Atomic Force Microscopy (AFM)-based nano-indentation in response to an imposed oscillatory deformation as a function of force, which can be converted to Young's Modulus. Collagen/chitosan scaffolds with different ratio (8:2 and 7:3, V/V), which already showed good properties for cell culture, were tested. The Young's Modulus of collagen/chitosan scaffold with ratio 7:3 is bigger than that of 8:2, which is consistent with our expectation. Force curves were obtained first from indentation, and then Young's Modulus was determined using a proper Hertz contact mathematical model. Meanwhile, the mechanical properties of mice pancreas and heart were obtained as controls. The results indicated that AFM-based nano-indentation is a good method for the mechanical property testing of porous scaffold.
机译:支架的结构和性质在基于细胞的组织工程中非常重要,尤其是机械性质。在这里,我们量化两种多孔胶原蛋白/壳聚糖支架的动态振荡力学行为。使用基于原子力显微镜(AFM)的纳米压痕,在PBS中测量杨氏模量,以响应施加的振荡变形作为力的函数,可以将其转换为杨氏模量。测试了具有不同比例(8:2和7:3,V / V)的胶原蛋白/壳聚糖支架,这些支架已经显示出良好的细胞培养特性。比例为7:3的胶原蛋白/壳聚糖支架的杨氏模量大于8:2的杨氏模量,这与我们的预期相符。首先从压痕获得力曲线,然后使用适当的赫兹接触数学模型确定杨氏模量。同时,获得了小鼠胰腺和心脏的机械性能作为对照。结果表明,基于AFM的纳米压痕是测试多孔支架力学性能的良好方法。

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