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The Scaffold–Articular Cartilage Interface: A Combined In Vitro and In Silico Analysis Under Controlled Loading Conditions

机译:脚手架-软骨界面:受控载荷条件下的体外和计算机模拟分析

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摘要

The optimal method to integrate scaffolds with articular cartilage has not yet been identified, in part because of our lack of understanding about the mechanobiological conditions at the interface. Our objective was to quantify the effect of mechanical loading on integration between a scaffold and articular cartilage. We hypothesized that increased number of loading cycles would have a detrimental effect on interface integrity. The following models were developed: (i) an in vitro scaffold–cartilage explant system in which compressive sinusoidal loading cycles were applied for 14 days at 1 Hz, 5 days per week, for either 900, 1800, 3600, or 7200 cycles per day and (ii) an in silico inhomogeneous, biphasic finite element model (bFEM) of the scaffold–cartilage construct that was used to characterize interface micromotion, stress, and fluid flow under the prescribed loading conditions. In accordance with our hypothesis, mechanical loading significantly decreased scaffold–cartilage interface strength compared to unloaded controls regardless of the number of loading cycles. The decrease in interfacial strength can be attributed to abrupt changes in vertical displacement, fluid pressure, and compressive stresses along the interface, which reach steady-state after only 150 cycles of loading. The interfacial mechanical conditions are further complicated by the mismatch between the homogeneous properties of the scaffold and the depth-dependent properties of the articular cartilage. Finally, we suggest that mechanical conditions at the interface can be more readily modulated by increasing pre-incubation time before the load is applied, as opposed to varying the number of loading cycles.
机译:尚没有确定将支架与关节软骨整合的最佳方法,部分原因是由于我们对界面的机械生物学状况缺乏了解。我们的目标是量化机械负荷对支架和关节软骨整合的影响。我们假设增加加载周期数会对接口完整性产生不利影响。开发了以下模型:(i)体外支架-软骨外植体系统,其中以1 Hz的频率施加压缩正弦曲线加载周期14天,每周5天,每天900、1800、3600或7200个周期(ii)脚手架-支架构造的计算机内非均相双相有限元模型(bFEM),用于表征在规定载荷条件下的界面微运动,应力和流体流动。根据我们的假设,与未加载的对照组相比,机械加载明显降低了脚手架-支架界面的强度,而与加载周期数无关。界面强度的下降可归因于垂直位移,流体压力和沿界面的压应力的突然变化,这些变化仅在150次加载循环后便达到稳态。支架的均质特性与关节软骨的深度相关特性之间的不匹配使界面机械条件更加复杂。最后,我们建议可以通过增加施加载荷之前的预孵育时间来更容易地调节界面处的机械条件,这与改变载荷循环的次数相反。

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