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Influence of tissue- and cell-scale extracellular matrix distribution on the mechanical properties of tissue-engineered cartilage

机译:组织和细胞规模的细胞外基质分布对组织工程软骨力学性能的影响

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The insufficient load-bearing capacity of today's tissue- engineered (TE) cartilage limits its clinical application. Generally, cartilage TE studies aim to increase the extracellular matrix (ECM) content, as this is thought to determine the load-bearing properties of the cartilage. However, there are apparent inconsistencies in the literature regarding the correlation between ECM content and mechanical properties of TE constructs. In addition to the amount of ECM, the spatial inhomogeneities in ECM distribution at the tissue scale as well as at the cell scale may affect the mechanical properties of TE cartilage. The relative importance of such structural inhomogeneities on mechanical behavior of TE cartilage is unknown. The aim of the present study was, therefore, to theoretically elucidate the influence of these inhomogeneities on the mechanical behavior of chondrocyte-agarose TE constructs. A validated non-linear fiber-reinforced poro-elastic swelling cartilage model that can accommodate for effects of collagen reinforcement and swelling by proteoglycans was used. At the tissue scale, ECM was gradually varied from predominantly localized in the periphery of the TE construct toward an ECM-rich inner core. The effect of these inhomogeneities in relation to the total amount of ECM was also evaluated. At the cell scale, ECM was gradually varied from localized in the pericellular area, toward equally distributed throughout the interterritorial area. Results from the tissue-scale model indicated that localization of ECM in either the construct periphery or in the inner core may reduce construct stiffness compared with that of constructs with homogeneous ECM. Such effects are more significant at high ECM amounts. At the cell scale, localization of ECM around the cells significantly reduced the overall stiffness, even at low ECM amounts. The compressive stiffness gradually increased when ECM distribution became more homogeneous and the osmotic swelling pressure in the interterritorial area increased. We conclude that for the same amount of ECM content in TE cartilage constructs, superior mechanical properties can be achieved with more homogeneous ECM distribution at both tissue and cell scale. Inhomogeneities at the cell scale are more important than those at the tissue scale.
机译:当今的组织工程(TE)软骨承载能力不足,限制了其临床应用。通常,软骨TE研究旨在增加细胞外基质(ECM)含量,因为这被认为可以确定软骨的承重特性。然而,关于ECM含量与TE结构的机械性能之间的相关性,文献中存在明显的矛盾。除了ECM的数量外,ECM在组织尺度和细胞尺度分布的空间不均匀性可能会影响TE软骨的机械性能。此类结构不均匀性对TE软骨力学行为的相对重要性尚不清楚。因此,本研究的目的是从理论上阐明这些不均匀性对软骨细胞-琼脂糖TE构建体力学行为的影响。使用经过验证的非线性纤维增强的孔隙弹性溶胀软骨模型,该模型可以适应胶原蛋白增强和蛋白聚糖溶胀的作用。在组织规模上,ECM从主要位于TE结构外围的逐渐向富含ECM的内核变化。还评估了这些不均匀性相对于ECM总量的影响。在细胞尺度上,ECM从局部分布在细胞周围区域逐渐变化,逐渐分布在整个区域间。组织规模模型的结果表明,与具有均质ECM的结构相比,ECM在结构外围或内芯中的定位可能会降低结构刚度。在高ECM量下,这种影响更为明显。在细胞尺度上,即使在低ECM量下,ECM在细胞周围的定位也会显着降低总体刚度。当ECM分布变得更均匀时,抗压刚度逐渐增加,并且在区域内的渗透溶胀压力增加。我们得出的结论是,对于TE软骨构建物中相同量的ECM含量,可以在组织和细胞尺度上实现更均匀的ECM分布,从而实现卓越的机械性能。在细胞尺度上的不均匀性比在组织尺度上的更重要。

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