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A reaction-diffusion model to predict the influence of neo-matrix on the subsequent development of tissue-engineered cartilage

机译:反应扩散模型可预测新基质对组织工程软骨随后发育的影响

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Extracellular matrix (ECM) in chondrocytes-seeded agarose aggregates to form islands of matrix. These islands need to coalesce to develop functional cartilage. Hence, macroscopic properties are determined by transport and aggregation of macromolecules at the microscale, which varies temporally and spatially. This study evaluates the importance of the mutual interaction between matrix components and matrix development.Fluorescence recovery after photobleaching measurements demonstrates that diffusivity depends on the presence and density of ECM. A reaction-diffusion model describing synthesis, transport and immobilisation of ECM predicts steep gradients in ECM around chondrocytes, resembling histology. Steric hindrance of diffusion by ECM is essential for the formation of these gradients. Finally, microscopic ECM concentration is linked with macroscopic mechanical properties. Construct softening is predicted when temporal and spatial variations in diffusivity are considered.In conclusion, non-constant diffusion renders significant effects on both the microscopic ECM development and the macroscopic mechanical properties of developing tissue-engineered cartilage.
机译:软骨细胞播种的琼脂糖中的细胞外基质(ECM)聚集形成基质岛。这些岛屿需要合并以发展功能性软骨。因此,宏观性质是由大分子在时间和空间上变化的大分子的迁移和聚集决定的。这项研究评估了基质成分和基质发展之间相互作用的重要性。光漂白测量后的荧光恢复表明扩散率取决于ECM的存在和密度。描述ECM的合成,运输和固定的反应扩散模型预测软骨细胞周围ECM的陡峭梯度,类似于组织学。 ECM扩散的立体阻碍对于形成这些梯度至关重要。最后,微观ECM浓度与宏观机械性能有关。当考虑扩散性的时空变化时,可以预测结构的软化。总而言之,非恒定扩散对组织工程软骨的微观ECM发育和宏观力学性能均具有显着影响。

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