Literature DB >> 34358535

Model-based data analysis of tissue growth in thin 3D printed scaffolds.

Alexander P Browning1, Oliver J Maclaren2, Pascal R Buenzli3, Matthew Lanaro4, Mark C Allenby4, Maria A Woodruff4, Matthew J Simpson5.   

Abstract

Tissue growth in three-dimensional (3D) printed scaffolds enables exploration and control of cell behaviour in more biologically realistic geometries than that allowed by traditional 2D cell culture. Cell proliferation and migration in these experiments have yet to be explicitly characterised, limiting the ability of experimentalists to determine the effects of various experimental conditions, such as scaffold geometry, on cell behaviour. We consider tissue growth by osteoblastic cells in melt electro-written scaffolds that comprise thin square pores with sizes that were deliberately increased between experiments. We collect highly detailed temporal measurements of the average cell density, tissue coverage, and tissue geometry. To quantify tissue growth in terms of the underlying cell proliferation and migration processes, we introduce and calibrate a mechanistic mathematical model based on the Porous-Fisher reaction-diffusion equation. Parameter estimates and uncertainty quantification through profile likelihood analysis reveal consistency in the rate of cell proliferation and steady-state cell density between pore sizes. This analysis also serves as an important model verification tool: while the use of reaction-diffusion models in biology is widespread, the appropriateness of these models to describe tissue growth in 3D scaffolds has yet to be explored. We find that the Porous-Fisher model is able to capture features relating to the cell density and tissue coverage, but is not able to capture geometric features relating to the circularity of the tissue interface. Our analysis identifies two distinct stages of tissue growth, suggests several areas for model refinement, and provides guidance for future experimental work that explores tissue growth in 3D printed scaffolds.
Copyright © 2021 Elsevier Ltd. All rights reserved.

Keywords:  3D printing; Parameter estimation; Porous-Fisher; Tissue engineering; Uncertainty quantification; reaction-diffusion

Year:  2021        PMID: 34358535     DOI: 10.1016/j.jtbi.2021.110852

Source DB:  PubMed          Journal:  J Theor Biol        ISSN: 0022-5193            Impact factor:   2.691


  4 in total

Review 1.  Parameter estimation and uncertainty quantification using information geometry.

Authors:  Jesse A Sharp; Alexander P Browning; Kevin Burrage; Matthew J Simpson
Journal:  J R Soc Interface       Date:  2022-04-27       Impact factor: 4.293

2.  3D Plotting of Calcium Phosphate Cement and Melt Electrowriting of Polycaprolactone Microfibers in One Scaffold: A Hybrid Additive Manufacturing Process.

Authors:  David Kilian; Max von Witzleben; Matthew Lanaro; Cynthia S Wong; Corina Vater; Anja Lode; Mark C Allenby; Maria A Woodruff; Michael Gelinsky
Journal:  J Funct Biomater       Date:  2022-06-08

3.  Quantitative analysis of tumour spheroid structure.

Authors:  Alexander P Browning; Jesse A Sharp; Nikolas K Haass; Matthew Simpson; Ryan J Murphy; Gency Gunasingh; Brodie Lawson; Kevin Burrage
Journal:  Elife       Date:  2021-11-29       Impact factor: 8.140

4.  A Continuum Mathematical Model of Substrate-Mediated Tissue Growth.

Authors:  Maud El-Hachem; Scott W McCue; Matthew J Simpson
Journal:  Bull Math Biol       Date:  2022-03-02       Impact factor: 1.758

  4 in total

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