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Numerical simulation of fluid field and in vitro three-dimensional fabrication of tissue-engineered bones in a rotating bioreactor and in vivo implantation for repairing segmental bone defects

机译:旋转生物反应器中流场的数值模拟和组织工程化骨骼的体外三维制造以及修复节段性骨缺损的体内植入

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摘要

In this paper, two-dimensional flow field simulation was conducted to determine shear stresses and velocity profiles for bone tissue engineering in a rotating wall vessel bioreactor (RWVB). In addition, in vitro three-dimensional fabrication of tissue-engineered bones was carried out in optimized bioreactor conditions, and in vivo implantation using fabricated bones was performed for segmental bone defects of Zelanian rabbits. The distribution of dynamic pressure, total pressure, shear stress, and velocity within the culture chamber was calculated for different scaffold locations. According to the simulation results, the dynamic pressure, velocity, and shear stress around the surface of cell-scaffold construction periodically changed at different locations of the RWVB, which could result in periodical stress stimulation for fabricated tissue constructs. However, overall shear stresses were relatively low, and the fluid velocities were uniform in the bioreactor. Our in vitro experiments showed that the number of cells cultured in the RWVB was five times higher than those cultured in a T-flask. The tissue-engineered bones grew very well in the RWVB. This study demonstrates that stress stimulation in an RWVB can be beneficial for cell/bio-derived bone constructs fabricated in an RWVB, with an application for repairing segmental bone defects.
机译:在本文中,进行了二维流场模拟,以确定旋转壁容器生物反应器(RWVB)中骨组织工程的剪切应力和速度分布。此外,在优化的生物反应器条件下进行了组织工程化骨骼的体外三维制作,并使用人造骨对Zelanian兔的节段性骨缺损进行了体内植入。计算了不同支架位置的培养室内动压,总压,切应力和速度的分布。根据模拟结果,在RWVB的不同位置处,细胞支架结构表面周围的动压力,速度和剪切应力会周期性地变化,这可能会导致对组织结构的周期性刺激。但是,总剪切应力相对较低,并且在生物反应器中流体速度是均匀的。我们的体外实验表明,在RWVB中培养的细胞数量是在T瓶中培养的细胞数量的五倍。在RWVB中,组织工程化的骨骼生长非常好。这项研究表明,在RWVB中进行应力刺激可能对在RWVB中制造的细胞/生物来源的骨结构有益,并具有修复节段性骨缺损的应用。

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