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Validation of a novel 3D flow model for the optimization of construct perfusion in radial-flow packed-bed bioreactors (rPBBs) for long-bone tissue engineering

机译:验证一种新型3D流模型,用于优化径向流动填充床生物反应器(RPBBS)对长骨组织工程的优化

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Osteogenic cell culture in three-dimensional (3D) hollow cylindrical porous scaffolds in radial-flow packed-bed bioreactors (rPBBs) may overcome the transport limitations of static and axial perfusion bioreactors in the engineering of long-bone substitutes. Flow models of rPBBs help optimize radial flux distribution of medium and tissue maturation in vitro. Only a 2D model is available for steady flow transport in rPBBs with axisymmetric inlet and outlet accounting for the fluid dynamics of void spaces, assessed against literature information. Here, a novel 3D model is proposed for steady flow transport in the three compartments of rPBBs with a more practical lateral outlet. A 3D model of transient tracer transport was developed based on the flow model to predict bioreactor residence time distribution (RTD). Model-predicted flow patterns were validated in terms of RTD against tracer experiments performed with bioreactor prototypes equipped with commercial scaffolds for bone tissue engineering. Bioreactors were challenged with a step change in entering tracer concentration in an optimized setup under conditions promoting uniform radial flux distribution and typical shunt flows. Model-predicted RTDs agreed well with those experimentally determined. In conclusion, tracer experiments validate the use of the 3D flow model for optimizing construct perfusion in rPBBs to engineer long-bone substitutes.
机译:在径向流动填充床生物反应器(RPBB)中的三维(3D)中空圆柱形多孔支架中的成骨细胞培养物可以克服长骨替代品工程中静态和轴向灌注生物反应器的运输限制。 RPBBS的流动模型有助于优化体外介质和组织成熟的径向助焊剂分布。只有2D模型可用于RPBBS的轴对称入口和出口占空隙空间的流体动力学的稳定流量,评估了文献信息。这里,提出了一种新颖的3D模型,用于具有更实用的横向出口的RPBB的三个隔室中的稳定流动运输。基于流动模型开发了瞬态示踪传输的3D模型,以预测生物反应器停留时间分布(RTD)。模型预测的流动模式在RTD上验证了用配备有用于骨组织工程的商业支架的生物反应器原型进行的示踪剂实验。生物反应器受到在促进均匀径向通量分布和典型分流流动的条件下在优化的设置中进入示踪剂浓度的步骤改变。模型预测RTDS与实验确定的那些相同。总之,示踪剂实验验证了3D流模型的使用,以优化RPBBS的构建灌注到工程的长骨替代品。

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