Cargando…

Pneumatic hydrodynamics influence transplastomic protein yields and biological responses during in vitro shoot regeneration of Nicotiana tabacum callus: Implications for bioprocess routes to plant-made biopharmaceuticals

Transplastomic plants are capable of high-yield production of recombinant biopharmaceutical proteins. Plant tissue culture combines advantages of agricultural cultivation with the bioprocess consistency associated with suspension culture. Overexpression of recombinant proteins through regeneration o...

Descripción completa

Detalles Bibliográficos
Autores principales: Barretto, Sherwin S., Michoux, Franck, Hellgardt, Klaus, Nixon, Peter J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5221668/
https://www.ncbi.nlm.nih.gov/pubmed/28111521
http://dx.doi.org/10.1016/j.bej.2016.10.007
_version_ 1782492861469556736
author Barretto, Sherwin S.
Michoux, Franck
Hellgardt, Klaus
Nixon, Peter J.
author_facet Barretto, Sherwin S.
Michoux, Franck
Hellgardt, Klaus
Nixon, Peter J.
author_sort Barretto, Sherwin S.
collection PubMed
description Transplastomic plants are capable of high-yield production of recombinant biopharmaceutical proteins. Plant tissue culture combines advantages of agricultural cultivation with the bioprocess consistency associated with suspension culture. Overexpression of recombinant proteins through regeneration of transplastomic Nicotiana tabacum shoots from callus tissue in RITA(®) temporary immersion bioreactors has been previously demonstrated. In this study we investigated the hydrodynamics of periodic pneumatic suspension of liquid medium during temporary immersion culture (4 min aeration every 8 h), and the impact on biological responses and transplastomic expression of fragment C of tetanus toxin (TetC). Biomass was grown under a range of aeration rates for 3, 20 and 40-day durations. Growth, mitochondrial activity (a viability indicator) and TetC protein yields were correlated against the hydrodynamic parameters, shear rate and energy dissipation rate (per kg of medium). A critical aeration rate of 440 ml min(−1) was identified, corresponding to a shear rate of 96.7 s(−1), pneumatic power input of 8.8 mW kg(−1) and initial 20-day pneumatic energy dissipation of 127 J kg(−1), at which significant reductions in biomass accumulation and mitochondrial activity were observed. There was an exponential decline in TetC yields with increasing aeration rates at 40 days, across the entire range of conditions tested. These observations have important implications for the optimisation and scale-up of transplastomic plant tissue culture bioprocesses for biopharmaceutical production.
format Online
Article
Text
id pubmed-5221668
institution National Center for Biotechnology Information
language English
publishDate 2017
publisher Elsevier
record_format MEDLINE/PubMed
spelling pubmed-52216682017-01-18 Pneumatic hydrodynamics influence transplastomic protein yields and biological responses during in vitro shoot regeneration of Nicotiana tabacum callus: Implications for bioprocess routes to plant-made biopharmaceuticals Barretto, Sherwin S. Michoux, Franck Hellgardt, Klaus Nixon, Peter J. Biochem Eng J Regular Article Transplastomic plants are capable of high-yield production of recombinant biopharmaceutical proteins. Plant tissue culture combines advantages of agricultural cultivation with the bioprocess consistency associated with suspension culture. Overexpression of recombinant proteins through regeneration of transplastomic Nicotiana tabacum shoots from callus tissue in RITA(®) temporary immersion bioreactors has been previously demonstrated. In this study we investigated the hydrodynamics of periodic pneumatic suspension of liquid medium during temporary immersion culture (4 min aeration every 8 h), and the impact on biological responses and transplastomic expression of fragment C of tetanus toxin (TetC). Biomass was grown under a range of aeration rates for 3, 20 and 40-day durations. Growth, mitochondrial activity (a viability indicator) and TetC protein yields were correlated against the hydrodynamic parameters, shear rate and energy dissipation rate (per kg of medium). A critical aeration rate of 440 ml min(−1) was identified, corresponding to a shear rate of 96.7 s(−1), pneumatic power input of 8.8 mW kg(−1) and initial 20-day pneumatic energy dissipation of 127 J kg(−1), at which significant reductions in biomass accumulation and mitochondrial activity were observed. There was an exponential decline in TetC yields with increasing aeration rates at 40 days, across the entire range of conditions tested. These observations have important implications for the optimisation and scale-up of transplastomic plant tissue culture bioprocesses for biopharmaceutical production. Elsevier 2017-01-15 /pmc/articles/PMC5221668/ /pubmed/28111521 http://dx.doi.org/10.1016/j.bej.2016.10.007 Text en © 2016 The Authors http://creativecommons.org/licenses/by/4.0/ This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Regular Article
Barretto, Sherwin S.
Michoux, Franck
Hellgardt, Klaus
Nixon, Peter J.
Pneumatic hydrodynamics influence transplastomic protein yields and biological responses during in vitro shoot regeneration of Nicotiana tabacum callus: Implications for bioprocess routes to plant-made biopharmaceuticals
title Pneumatic hydrodynamics influence transplastomic protein yields and biological responses during in vitro shoot regeneration of Nicotiana tabacum callus: Implications for bioprocess routes to plant-made biopharmaceuticals
title_full Pneumatic hydrodynamics influence transplastomic protein yields and biological responses during in vitro shoot regeneration of Nicotiana tabacum callus: Implications for bioprocess routes to plant-made biopharmaceuticals
title_fullStr Pneumatic hydrodynamics influence transplastomic protein yields and biological responses during in vitro shoot regeneration of Nicotiana tabacum callus: Implications for bioprocess routes to plant-made biopharmaceuticals
title_full_unstemmed Pneumatic hydrodynamics influence transplastomic protein yields and biological responses during in vitro shoot regeneration of Nicotiana tabacum callus: Implications for bioprocess routes to plant-made biopharmaceuticals
title_short Pneumatic hydrodynamics influence transplastomic protein yields and biological responses during in vitro shoot regeneration of Nicotiana tabacum callus: Implications for bioprocess routes to plant-made biopharmaceuticals
title_sort pneumatic hydrodynamics influence transplastomic protein yields and biological responses during in vitro shoot regeneration of nicotiana tabacum callus: implications for bioprocess routes to plant-made biopharmaceuticals
topic Regular Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5221668/
https://www.ncbi.nlm.nih.gov/pubmed/28111521
http://dx.doi.org/10.1016/j.bej.2016.10.007
work_keys_str_mv AT barrettosherwins pneumatichydrodynamicsinfluencetransplastomicproteinyieldsandbiologicalresponsesduringinvitroshootregenerationofnicotianatabacumcallusimplicationsforbioprocessroutestoplantmadebiopharmaceuticals
AT michouxfranck pneumatichydrodynamicsinfluencetransplastomicproteinyieldsandbiologicalresponsesduringinvitroshootregenerationofnicotianatabacumcallusimplicationsforbioprocessroutestoplantmadebiopharmaceuticals
AT hellgardtklaus pneumatichydrodynamicsinfluencetransplastomicproteinyieldsandbiologicalresponsesduringinvitroshootregenerationofnicotianatabacumcallusimplicationsforbioprocessroutestoplantmadebiopharmaceuticals
AT nixonpeterj pneumatichydrodynamicsinfluencetransplastomicproteinyieldsandbiologicalresponsesduringinvitroshootregenerationofnicotianatabacumcallusimplicationsforbioprocessroutestoplantmadebiopharmaceuticals