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Time-Dependent Shear Stress Distributions during Extended Flow Perfusion Culture of Bone Tissue Engineered Constructs

机译:骨组织工程构建体的扩展血流灌注培养过程中的时变剪切应力分布

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Flow perfusion bioreactors have been extensively investigated as a promising culture method for bone tissue engineering, due to improved nutrient delivery and shear force-mediated osteoblastic differentiation. However, a major drawback impeding the transition to clinically-relevant tissue regeneration is the inability to non-destructively monitor constructs during culture. To alleviate this shortcoming, we investigated the distribution of fluid shear forces in scaffolds cultured in flow perfusion bioreactors using computational fluid dynamic techniques, analyzed the effects of scaffold architecture on the shear forces and monitored tissue mineralization throughout the culture period using microcomputed tomography. For this study, we dynamically seeded one million adult rat mesenchymal stem cells (MSCs) on 85% porous poly(l-lactic acid) (PLLA) polymeric spunbonded scaffolds. After taking intermittent samples over 16 days, the constructs were imaged and reconstructed using microcomputed tomography. Fluid dynamic simulations were performed using a custom in-house lattice Boltzmann program. By taking samples at different time points during culture, we are able to monitor the mineralization and resulting changes in flow-induced shear distributions in the porous scaffolds as the constructs mature into bone tissue engineered constructs, which has not been investigated previously in the literature. From the work conducted in this study, we proved that the average shear stress per construct consistently increases as a function of culture time, resulting in an increase at Day 16 of 113%.
机译:由于改善了养分的输送和剪切力介导的成骨细胞分化,流动灌注生物反应器已被广泛研究为骨组织工程的一种有前途的培养方法。然而,阻碍过渡到临床相关组织再生的主要缺点是在培养过程中不能无损监测构建体。为了缓解这一缺点,我们使用计算流体力学技术研究了在流动灌注生物反应器中培养的支架中流体剪切力的分布,分析了支架结构对剪切力的影响,并使用微计算机断层扫描监测了整个培养期间的组织矿化。对于这项研究,我们动态地将一百万只成年大鼠间充质干细胞(MSC)播种在85%多孔聚(l-乳酸)(PLLA)聚合物纺粘支架上。在16天的时间间隔内取样后,用微计算机断层摄影术对构建体进行成像和重建。使用定制的内部格子Boltzmann程序进行流体动力学模拟。通过在培养过程中不同时间点取样,我们能够监测矿化作用以及在多孔支架中流动诱导的剪切分布的变化,因为该结构成熟为骨组织工程化结构,这在文献中尚未进行过研究。通过这项研究的工作,我们证明了每个构建体的平均切应力始终随培养时间而增加,导致第16天的增加为113%。

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