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A mathematical model for fluid shear-sensitive 3D tissue construct development
Journal article   Peer reviewed

A mathematical model for fluid shear-sensitive 3D tissue construct development

Dan Liu, Chee-Kai Chua and Kah-Fai Leong
Biomechanics and modeling in mechanobiology, Vol.12(1), pp.19-31
01/2013
PMID: 22314710

Abstract

Animals Cell Physiological Phenomena - physiology Cell Proliferation Computer Simulation Extracellular Matrix - physiology Humans Mechanotransduction, Cellular - physiology Models, Biological Oxygen Consumption - physiology Rheology - methods Shear Strength - physiology Stress, Mechanical Tissue Engineering - methods
This research studies dynamic culture for 3D tissue construct development with computational fluid dynamics. It proposes a mathematical model to evaluate the impact of flow rates and flow shear stress on cell growth in 3D constructs under perfusion. The modeling results show that dynamic flow, even at flow rate as low as 0.002 cm/s, can support much better mass exchange, higher cell number, and more even cell and nutrient distribution compared to static culture. Higher flow rate can further improve nutrient supply and mass exchange in the construct, promoting better nutritious environment and cell proliferation compared to lower flow rate. In addition, consideration of flow shear stress predicts much higher cell number in the construct compared to that without shear consideration. While the nutrient can dominate shear stress in influencing cell proliferation, the shear effect increases with flow rate. The proposed model helps tissue engineers better understand the cell-flow relationship at the molecular level during dynamic culture.

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