A strategy to determine operating parameters in tissue engineering hollow fiber bioreactors.

The development of tissue engineering hollow fiber bioreactors (HFB) requires the optimal design of the geometry and operation parameters of the system. This article provides a strategy for specifying operating conditions for the system based on mathematical models of oxygen delivery to the cell pop...

Full description

Bibliographic Details
Main Authors: Shipley, R, Davidson, A, Chan, K, Chaudhuri, J, Waters, S, Ellis, M
Format: Journal article
Language:English
Published: 2011
_version_ 1797079202948710400
author Shipley, R
Davidson, A
Chan, K
Chaudhuri, J
Waters, S
Ellis, M
author_facet Shipley, R
Davidson, A
Chan, K
Chaudhuri, J
Waters, S
Ellis, M
author_sort Shipley, R
collection OXFORD
description The development of tissue engineering hollow fiber bioreactors (HFB) requires the optimal design of the geometry and operation parameters of the system. This article provides a strategy for specifying operating conditions for the system based on mathematical models of oxygen delivery to the cell population. Analytical and numerical solutions of these models are developed based on Michaelis-Menten kinetics. Depending on the minimum oxygen concentration required to culture a functional cell population, together with the oxygen uptake kinetics, the strategy dictates the model needed to describe mass transport so that the operating conditions can be defined. If c(min) ≫ K(m) we capture oxygen uptake using zero-order kinetics and proceed analytically. This enables operating equations to be developed that allow the user to choose the medium flow rate, lumen length, and ECS depth to provide a prescribed value of c(min) . When c(min) />>K(m), we use numerical techniques to solve full Michaelis-Menten kinetics and present operating data for the bioreactor. The strategy presented utilizes both analytical and numerical approaches and can be applied to any cell type with known oxygen transport properties and uptake kinetics.
first_indexed 2024-03-07T00:42:24Z
format Journal article
id oxford-uuid:83842b7b-d150-44b4-9b80-a78e60478a85
institution University of Oxford
language English
last_indexed 2024-03-07T00:42:24Z
publishDate 2011
record_format dspace
spelling oxford-uuid:83842b7b-d150-44b4-9b80-a78e60478a852022-03-26T21:44:37ZA strategy to determine operating parameters in tissue engineering hollow fiber bioreactors.Journal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:83842b7b-d150-44b4-9b80-a78e60478a85EnglishSymplectic Elements at Oxford2011Shipley, RDavidson, AChan, KChaudhuri, JWaters, SEllis, MThe development of tissue engineering hollow fiber bioreactors (HFB) requires the optimal design of the geometry and operation parameters of the system. This article provides a strategy for specifying operating conditions for the system based on mathematical models of oxygen delivery to the cell population. Analytical and numerical solutions of these models are developed based on Michaelis-Menten kinetics. Depending on the minimum oxygen concentration required to culture a functional cell population, together with the oxygen uptake kinetics, the strategy dictates the model needed to describe mass transport so that the operating conditions can be defined. If c(min) ≫ K(m) we capture oxygen uptake using zero-order kinetics and proceed analytically. This enables operating equations to be developed that allow the user to choose the medium flow rate, lumen length, and ECS depth to provide a prescribed value of c(min) . When c(min) />>K(m), we use numerical techniques to solve full Michaelis-Menten kinetics and present operating data for the bioreactor. The strategy presented utilizes both analytical and numerical approaches and can be applied to any cell type with known oxygen transport properties and uptake kinetics.
spellingShingle Shipley, R
Davidson, A
Chan, K
Chaudhuri, J
Waters, S
Ellis, M
A strategy to determine operating parameters in tissue engineering hollow fiber bioreactors.
title A strategy to determine operating parameters in tissue engineering hollow fiber bioreactors.
title_full A strategy to determine operating parameters in tissue engineering hollow fiber bioreactors.
title_fullStr A strategy to determine operating parameters in tissue engineering hollow fiber bioreactors.
title_full_unstemmed A strategy to determine operating parameters in tissue engineering hollow fiber bioreactors.
title_short A strategy to determine operating parameters in tissue engineering hollow fiber bioreactors.
title_sort strategy to determine operating parameters in tissue engineering hollow fiber bioreactors
work_keys_str_mv AT shipleyr astrategytodetermineoperatingparametersintissueengineeringhollowfiberbioreactors
AT davidsona astrategytodetermineoperatingparametersintissueengineeringhollowfiberbioreactors
AT chank astrategytodetermineoperatingparametersintissueengineeringhollowfiberbioreactors
AT chaudhurij astrategytodetermineoperatingparametersintissueengineeringhollowfiberbioreactors
AT waterss astrategytodetermineoperatingparametersintissueengineeringhollowfiberbioreactors
AT ellism astrategytodetermineoperatingparametersintissueengineeringhollowfiberbioreactors
AT shipleyr strategytodetermineoperatingparametersintissueengineeringhollowfiberbioreactors
AT davidsona strategytodetermineoperatingparametersintissueengineeringhollowfiberbioreactors
AT chank strategytodetermineoperatingparametersintissueengineeringhollowfiberbioreactors
AT chaudhurij strategytodetermineoperatingparametersintissueengineeringhollowfiberbioreactors
AT waterss strategytodetermineoperatingparametersintissueengineeringhollowfiberbioreactors
AT ellism strategytodetermineoperatingparametersintissueengineeringhollowfiberbioreactors