4.5 Article

Micro-Computed Tomography Based Computational Fluid Dynamics for the Determination of Shear Stresses in Scaffolds Within a Perfusion Bioreactor

Journal

ANNALS OF BIOMEDICAL ENGINEERING
Volume 42, Issue 5, Pages 1085-1094

Publisher

SPRINGER
DOI: 10.1007/s10439-014-0981-0

Keywords

Scaffold; Bone tissue engineering; Perfusion bioreactor; Computational fluid dynamics; Direct pore-level simulations

Funding

  1. European Union [BIODESIGN FP7-NMP-2010-LARGE-4]

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Perfusion bioreactors are known to exert shear stresses on cultured cells, leading to cell differentiation and enhanced extracellular matrix deposition on scaffolds. The influence of the scaffold's porous microstructure is investigated for a polycaprolactone (PCL) scaffold with a regular microarchitecture and a silk fibroin (SF) scaffold with an irregular network of interconnected pores. Their complex 3D geometries are imaged by micro-computed tomography and used in direct pore-level simulations of the entire scaffold-bioreactor system to numerically solve the governing mass and momentum conservation equations for fluid flow through porous media. The velocity field and wall shear stress distribution are determined for both scaffolds. The PCL scaffold exhibited an asymmetric distribution with peak and plateau, while the SF scaffold exhibited a homogenous distribution and conditioned the flow more efficiently than the PCL scaffold. The methodology guides the design and optimization of the scaffold geometry.

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