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The influence of cyclic tension amplitude on chondrocyte matrix synthesis: Experimental and finite element analyses

机译:循环张力幅度对软骨细胞基质合成的影响:实验性和有限元分析

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While not generally viewed as physiologically significant in articular cartilage, substantial tension can develop in fibrocartilage structures and in articular cartilage injuries This study examined how different amplitudes of cyclic tension influence chondrocyte matrix synthesis Bovine articular chondrocytes seeded in fibrin gels were loaded continuously for 48 hours at 1.0 Hz with displacements of 5%, 10%, or 20%. Protein and proteoglycan synthesis were measured by H-proline and ~(35)S-sulfate incorporation, respectively A poroelastic finite demerit model of the fibrin gel was developed to determine the strain distributions, hydrostatic pressures, and fluid velocities within the constructs at the various levels of displacement Compared to unloaded controls, 10% and 20% displacements inhibited proteoglycan synthesis to the same extent, while 5% displacement had no effect Tensile loading did not significantly affect protein synthesis. The finite element model predicted a wide range of strains and fluid velocities within the region of the gel analyzed for matrix synthesis, and the ranges overlapped for the different levels of displacement These results indicate that the cyclic tension amplitude influences chondrocyte proteoglycan synthesis and that there may be a threshold in the response.
机译:虽然通常在关节软骨中的生理学上视为生理上显着,但在纤维纤维结构中可以发展,并且在关节软骨损伤中,该研究检查了循环张力影响的不同幅度的循环张力影响有多种纤维蛋白凝胶蜂窝状凝胶的细胞关节细胞的巨型关节胶质细胞连续加载48小时。 1.0 Hz,位移5%,10%或20%。通过H-脯氨酸和〜(35)S-硫酸盐掺入测量蛋白质和蛋白质增生合成,分别开发了纤维蛋白凝胶的腹弹性有限脱模模型,以确定各种结构中的应变分布,静水压力和流体速度与卸载对照相比的位移水平,10%和20%位移抑制蛋白质糖合成的程度,而5%位移没有效果拉伸负载没有显着影响蛋白质合成。有限元模型预测用于基质合成的凝胶区域内的各种菌株和流体速度,并且对于不同位移水平的范围这些结果表明循环张力幅度影响软骨细胞蛋白多糖的合成,并且可能存在是响应的阈值。

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