Burova Iva, Wall Ivan, Shipley Rebecca J
Department of Mechanical Engineering, University College London (UCL), London, UK.
Aston Medical Research Institute and School of Life & Health Sciences, Aston University, Birmingham, UK.
J Tissue Eng. 2019 Feb 22;10:2041731419827922. doi: 10.1177/2041731419827922. eCollection 2019 Jan-Dec.
Research into cellular engineered bone grafts offers a promising solution to problems associated with the currently used auto- and allografts. Bioreactor systems can facilitate the development of functional cellular bone grafts by augmenting mass transport through media convection and shear flow-induced mechanical stimulation. Developing successful and reproducible protocols for growing bone tissue is dependent on tuning the bioreactor operating conditions to the specific cell type and graft design. This process, largely reliant on a trial-and-error approach, is challenging, time-consuming and expensive. Modelling can streamline the process by providing further insight into the effect of the bioreactor environment on the cell culture, and by identifying a beneficial range of operational settings to stimulate tissue production. Models can explore the impact of changing flow speeds, scaffold properties, and nutrient and growth factor concentrations. Aiming to act as an introductory reference for bone tissue engineers looking to direct their experimental work, this article presents a comprehensive framework of mathematical models on various aspects of bioreactor bone cultures and overviews modelling case studies from literature.
对细胞工程骨移植的研究为解决目前使用的自体骨和异体骨相关问题提供了一个有前景的解决方案。生物反应器系统可以通过增强介质对流和剪切流诱导的机械刺激来促进功能性细胞骨移植的发育。开发成功且可重复的骨组织生长方案取决于根据特定的细胞类型和移植设计来调整生物反应器的操作条件。这个过程很大程度上依赖于反复试验的方法,具有挑战性、耗时且昂贵。建模可以通过进一步深入了解生物反应器环境对细胞培养的影响,并确定刺激组织生成的有益操作设置范围,从而简化这一过程。模型可以探索流速变化、支架特性以及营养物和生长因子浓度的影响。旨在为希望指导其实验工作的骨组织工程师提供入门参考,本文介绍了关于生物反应器骨培养各个方面的数学模型的综合框架,并概述了文献中的建模案例研究。