Author
O'Dea, R
Waters, S
Byrne, H
Journal title
Math Med Biol
DOI
10.1093/imammb/dqp003
Issue
2
Volume
27
Last updated
2023-12-19T22:39:12.283+00:00
Page
95-127
Abstract
The growth of a cell population within a rigid porous scaffold in a perfusion bioreactor is studied, using a three-phase continuum model of the type presented by Lemon et al. (2006, Multiphase modelling of tissue growth using the theory of mixtures. J. Math. Biol., 52, 571-594) to represent the cell population (and attendant extracellular matrix), culture medium and porous scaffold. The bioreactor system is modelled as a 2D channel containing the cell-seeded rigid porous scaffold (tissue construct) which is perfused with culture medium. The study concentrates on (i) the cell-cell and cell-scaffold interactions and (ii) the impact of mechanotransduction mechanisms on construct composition. A numerical and analytical analysis of the model equations is presented and, depending upon the relative importance of cell aggregation and repulsion, markedly different cell movement is revealed. Additionally, mechanotransduction effects due to cell density, pressure and shear stress-mediated tissue growth are shown to generate qualitative differences in the composition of the resulting construct. The results of our simulations indicate that this model formulation (in conjunction with appropriate experimental data) has the potential to provide a means of identifying the dominant regulatory stimuli in a cell population.
Symplectic ID
60574
Download URL
https://www.ncbi.nlm.nih.gov/pubmed/19805485
Favourite
Off
Publication type
Journal Article
Publication date
Jun 2010
Please contact us with feedback and comments about this page. Created on 22 Jun 2010 - 02:51.