Shakhawath Hossain Md, Bergstrom D J, Chen X B
Mechanical Engineering Department, University of Saskatchewan, 57 Campus Drive, Saskatoon, SK, S7N 5A9, Canada.
Biotechnol Bioeng. 2015 Dec;112(12):2601-10. doi: 10.1002/bit.25678. Epub 2015 Jul 14.
The in vitro chondrocyte cell culture for cartilage tissue regeneration in a perfusion bioreactor is a complex process. Mathematical modeling and computational simulation can provide important insights into the culture process, which would be helpful for selecting culture conditions to improve the quality of the developed tissue constructs. However, simulation of the cell culture process is a challenging task due to the complicated interaction between the cells and local fluid flow and nutrient transport inside the complex porous scaffolds. In this study, a mathematical model and computational framework has been developed to simulate the three-dimensional (3D) cell growth in a porous scaffold placed inside a bi-directional flow perfusion bioreactor. The model was developed by taking into account the two-way coupling between the cell growth and local flow field and associated glucose concentration, and then used to perform a resolved-scale simulation based on the lattice Boltzmann method (LBM). The simulation predicts the local shear stress, glucose concentration, and 3D cell growth inside the porous scaffold for a period of 30 days of cell culture. The predicted cell growth rate was in good overall agreement with the experimental results available in the literature. This study demonstrates that the bi-directional flow perfusion culture system can enhance the homogeneity of the cell growth inside the scaffold. The model and computational framework developed is capable of providing significant insight into the culture process, thus providing a powerful tool for the design and optimization of the cell culture process.
在灌注生物反应器中进行软骨组织再生的体外软骨细胞培养是一个复杂的过程。数学建模和计算模拟能够为培养过程提供重要的见解,这将有助于选择培养条件以提高所构建组织的质量。然而,由于细胞与复杂多孔支架内部局部流体流动和营养物质传输之间的复杂相互作用,细胞培养过程的模拟是一项具有挑战性的任务。在本研究中,已开发出一个数学模型和计算框架,用于模拟置于双向流灌注生物反应器内的多孔支架中的三维(3D)细胞生长。该模型通过考虑细胞生长与局部流场及相关葡萄糖浓度之间的双向耦合而开发,然后基于格子玻尔兹曼方法(LBM)进行解析尺度模拟。该模拟预测了细胞培养30天期间多孔支架内的局部剪切应力、葡萄糖浓度和三维细胞生长情况。预测的细胞生长速率与文献中可得的实验结果总体上吻合良好。本研究表明,双向流灌注培养系统可提高支架内细胞生长的均匀性。所开发的模型和计算框架能够为培养过程提供重要见解,从而为细胞培养过程的设计和优化提供一个强大的工具。