Literature DB >> 23124479

In silico multi-scale model of transport and dynamic seeding in a bone tissue engineering perfusion bioreactor.

T J Spencer1, L A Hidalgo-Bastida, S H Cartmell, I Halliday, C M Care.   

Abstract

Computer simulations can potentially be used to design, predict, and inform properties for tissue engineering perfusion bioreactors. In this work, we investigate the flow properties that result from a particular poly-L-lactide porous scaffold and a particular choice of perfusion bioreactor vessel design used in bone tissue engineering. We also propose a model to investigate the dynamic seeding properties such as the homogeneity (or lack of) of the cellular distribution within the scaffold of the perfusion bioreactor: a pre-requisite for the subsequent successful uniform growth of a viable bone tissue engineered construct. Flows inside geometrically complex scaffolds have been investigated previously and results shown at these pore scales. Here, it is our aim to show accurately that through the use of modern high performance computers that the bioreactor device scale that encloses a scaffold can affect the flows and stresses within the pores throughout the scaffold which has implications for bioreactor design, control, and use. Central to this work is that the boundary conditions are derived from micro computed tomography scans of both a device chamber and scaffold in order to avoid generalizations and uncertainties. Dynamic seeding methods have also been shown to provide certain advantages over static seeding methods. We propose here a novel coupled model for dynamic seeding accounting for flow, species mass transport and cell advection-diffusion-attachment tuned for bone tissue engineering. The model highlights the timescale differences between different species suggesting that traditional homogeneous porous flow models of transport must be applied with caution to perfusion bioreactors. Our in silico data illustrate the extent to which these experiments have the potential to contribute to future design and development of large-scale bioreactors.
Copyright © 2012 Wiley Periodicals, Inc.

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Year:  2012        PMID: 23124479     DOI: 10.1002/bit.24777

Source DB:  PubMed          Journal:  Biotechnol Bioeng        ISSN: 0006-3592            Impact factor:   4.530


  6 in total

1.  Estimation of anisotropic permeability in trabecular bone based on microCT imaging and pore-scale fluid dynamics simulations.

Authors:  C Daish; R Blanchard; K Gulati; D Losic; D Findlay; D J E Harvie; P Pivonka
Journal:  Bone Rep       Date:  2016-12-16

2.  Flow perfusion rate modulates cell deposition onto scaffold substrate during cell seeding.

Authors:  A Campos Marín; M Brunelli; D Lacroix
Journal:  Biomech Model Mechanobiol       Date:  2017-11-29

Review 3.  In vitro Models and On-Chip Systems: Biomaterial Interaction Studies With Tissues Generated Using Lung Epithelial and Liver Metabolic Cell Lines.

Authors:  Milica Nikolic; Tijana Sustersic; Nenad Filipovic
Journal:  Front Bioeng Biotechnol       Date:  2018-09-03

4.  Medium Perfusion Flow Improves Osteogenic Commitment of Human Stromal Cells.

Authors:  Alice Pasini; Joseph Lovecchio; Giulia Ferretti; Emanuele Giordano
Journal:  Stem Cells Int       Date:  2019-05-02       Impact factor: 5.443

5.  A simple in vitro biomimetic perfusion system for mechanotransduction study.

Authors:  Ruikang Xue; Sarah Cartmell
Journal:  Sci Technol Adv Mater       Date:  2020-09-11       Impact factor: 8.090

6.  2D µ-Particle Image Velocimetry and Computational Fluid Dynamics Study Within a 3D Porous Scaffold.

Authors:  A Campos Marin; T Grossi; E Bianchi; G Dubini; D Lacroix
Journal:  Ann Biomed Eng       Date:  2016-12-12       Impact factor: 3.934

  6 in total

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