Prediction of the micro-fluid dynamic environment imposed to three-dimensional engineered cell systems in bioreactors

被引:125
作者
Boschetti, F
Raimondi, MT
Migliavacca, F
Dubini, G
机构
[1] Politecn Milan, Dept Struct Engn, Lab Biol Struct Mech, I-20133 Milan, Italy
[2] Politecn Milan, Dept Bioengn, Lab Biol Struct Mech, I-20133 Milan, Italy
关键词
tissue engineering; mechanobiology; shear stress; computational fluid-dynamics;
D O I
10.1016/j.jbiomech.2004.12.022
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Bioreactors allowing culture medium perfusion overcome diffusion limitations associated with static culturing and provide flow-mediated mechanical stimuli. The hydrodynamic stress imposed to cells will depend not only on the culture medium flow rate, but also on the scaffold three-dimensional (3D) micro-architecture. We developed a CFD model of the flow of culture medium through a 3D scaffold of homogeneous geometry, with the aim of predicting the shear stress acting on cells as a function of parameters that can be controlled during the scaffold fabrication process, such as the scaffold porosity and the pore size, and during the cell culture, such as the medium flow rate and the diameter of the perfused scaffold section. We built three groups of models corresponding to three pore sizes: 50, 100 and 150 mu m. Each group was made of four models corresponding to 59%, 65%, 77%, and 89% porosity. A commercial finite-element code was used to set up and solve the problem and to analyze the results. The mode value of shear stress varied between 2 and 5 mPa, and was obtained for a circular scaffold of 15.5 mm diameter, perfused by a flow rate of 0.5 ml/min. The simulations showed that the pore size is a variable strongly influencing the predicted shear stress level, whereas the porosity is a variable strongly affecting the statistical distribution of the shear stresses, but not their magnitude. Our results provide a basis for the completion of more exhaustive quantitative studies to further assess the relationship between perfusion, at known micro-fluid dynamic conditions, and tissue growth in vitro. (c) 2005 Elsevier Ltd. All rights reserved.
引用
收藏
页码:418 / 425
页数:8
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