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Scaffold architecture determines chondrocyte response to externally applied dynamic compression

机译:支架结构决定软骨细胞对外部施加动态压缩的反应

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It remains unclear how specific mechanical signals generated by applied dynamic compression (DC) regulate chondrocyte biosynthetic activity. It has previously been suggested that DC-induced interstitial fluid flow positively impacts cartilage-specific matrix production. Modifying fluid flow within dynamically compressed hydrogels therefore represents a promising approach to controlling chondrocyte behavior, which could potentially be achieved by changing the construct architecture. The objective of this study was to first determine the influence of construct architecture on the mechanical environment within dynamically compressed agarose hydrogels using finite element (FE) modeling and to then investigate how chondrocytes would respond to this altered environment. To modify construct architecture, an array of channels was introduced into the hydrogels. Increased magnitudes of fluid flow were predicted in the periphery of dynamically compressed solid hydrogels and also around the channels in the dynamically compressed channeled hydrogels. DC was found to significantly increase sGAG synthesis in solid constructs, which could be attributed at least in part to an increase in DNA. DC was also found to preferentially increase collagen accumulation in regions of solid and channeled constructs where FE modeling predicted higher levels of fluid flow, suggesting that this stimulus is important for promoting collagen production by chondrocytes embedded in agarose gels. In conclusion, this study demonstrates how the architecture of cell-seeded scaffolds or hydrogels can be modified to alter the spatial levels of biophysical cues throughout the construct, leading to greater collagen accumulation throughout the engineered tissue rather than preferentially in the construct periphery. This system also provides a novel approach to investigate how chondrocytes respond to altered levels of biophysical stimulation.
机译:尚不清楚通过施加动态压缩(DC)产生的特定机械信号如何调节软骨细胞的生物合成活性。以前曾有人提出,DC诱导的组织液流动会对软骨特异性基质的产生产生积极影响。因此,改变动态压缩的水凝胶中的流体流动代表了一种有希望的控制软骨细胞行为的方法,这可以通过改变构建体结构来实现。这项研究的目的是首先使用有限元(FE)建模方法确定构造结构对动态压缩的琼脂糖水凝胶中机械环境的影响,然后研究软骨细胞如何对这种变化的环境做出反应。为了改变构建体结构,将一系列通道引入水凝胶中。预测在动态压缩的固体水凝胶的外围以及动态压缩的通道水凝胶中的通道周围,流体的流量会增加。发现DC显着增加了固体构建物中sGAG的合成,这至少部分归因于DNA的增加。还发现DC优先增加固体和通道结构中有限元建模预测较高水平流体流动的区域中胶原蛋白的积累,表明该刺激对于促进琼脂糖凝胶中包埋的软骨细胞促进胶原蛋白的产生很重要。总而言之,这项研究证明了如何修改细胞种子支架或水凝胶的结构,以改变整个构建体中生物物理线索的空间水平,从而导致整个工程组织中胶原蛋白的积累更多,而不是优先在构建体外围。该系统还提供了一种新颖的方法来研究软骨细胞如何响应改变的生物物理刺激水平。

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