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Engineered human meniscus’ matrix-forming phenotype is unaffected by low strain dynamic compression under hypoxic conditions

Low oxygen and mechanical loading may play roles in regulating the fibrocartilaginous phenotype of the human inner meniscus, but their combination in engineered tissues remains unstudied. Here, we investigated how continuous low oxygen (“hypoxia”) combined with dynamic compression would affect the f...

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Autores principales: Szojka, Alexander R. A., Moore, Colleen N., Liang, Yan, Andrews, Stephen H. J., Kunze, Melanie, Mulet-Sierra, Aillette, Jomha, Nadr M., Adesida, Adetola B.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7946300/
https://www.ncbi.nlm.nih.gov/pubmed/33690647
http://dx.doi.org/10.1371/journal.pone.0248292
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author Szojka, Alexander R. A.
Moore, Colleen N.
Liang, Yan
Andrews, Stephen H. J.
Kunze, Melanie
Mulet-Sierra, Aillette
Jomha, Nadr M.
Adesida, Adetola B.
author_facet Szojka, Alexander R. A.
Moore, Colleen N.
Liang, Yan
Andrews, Stephen H. J.
Kunze, Melanie
Mulet-Sierra, Aillette
Jomha, Nadr M.
Adesida, Adetola B.
author_sort Szojka, Alexander R. A.
collection PubMed
description Low oxygen and mechanical loading may play roles in regulating the fibrocartilaginous phenotype of the human inner meniscus, but their combination in engineered tissues remains unstudied. Here, we investigated how continuous low oxygen (“hypoxia”) combined with dynamic compression would affect the fibrocartilaginous “inner meniscus-like” matrix-forming phenotype of human meniscus fibrochondrocytes (MFCs) in a porous type I collagen scaffold. Freshly-seeded MFC scaffolds were cultured for 4 weeks in either 3 or 20% O(2) or pre-cultured for 2 weeks in 3% O(2) and then dynamically compressed for 2 weeks (10% strain, 1 Hz, 1 h/day, 5 days/week), all with or without TGF-β3 supplementation. TGF-β3 supplementation was found necessary to induce matrix formation by MFCs in the collagen scaffold regardless of oxygen tension and application of the dynamic compression loading regime. Neither hypoxia under static culture nor hypoxia combined with dynamic compression had significant effects on expression of specific protein and mRNA markers for the fibrocartilaginous matrix-forming phenotype. Mechanical properties significantly increased over the two-week loading period but were not different between static and dynamic-loaded tissues after the loading period. These findings indicate that 3% O(2) applied immediately after scaffold seeding and dynamic compression to 10% strain do not affect the fibrocartilaginous matrix-forming phenotype of human MFCs in this type I collagen scaffold. It is possible that a delayed hypoxia treatment and an optimized pre-culture period and loading regime combination would have led to different outcomes.
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spelling pubmed-79463002021-03-19 Engineered human meniscus’ matrix-forming phenotype is unaffected by low strain dynamic compression under hypoxic conditions Szojka, Alexander R. A. Moore, Colleen N. Liang, Yan Andrews, Stephen H. J. Kunze, Melanie Mulet-Sierra, Aillette Jomha, Nadr M. Adesida, Adetola B. PLoS One Research Article Low oxygen and mechanical loading may play roles in regulating the fibrocartilaginous phenotype of the human inner meniscus, but their combination in engineered tissues remains unstudied. Here, we investigated how continuous low oxygen (“hypoxia”) combined with dynamic compression would affect the fibrocartilaginous “inner meniscus-like” matrix-forming phenotype of human meniscus fibrochondrocytes (MFCs) in a porous type I collagen scaffold. Freshly-seeded MFC scaffolds were cultured for 4 weeks in either 3 or 20% O(2) or pre-cultured for 2 weeks in 3% O(2) and then dynamically compressed for 2 weeks (10% strain, 1 Hz, 1 h/day, 5 days/week), all with or without TGF-β3 supplementation. TGF-β3 supplementation was found necessary to induce matrix formation by MFCs in the collagen scaffold regardless of oxygen tension and application of the dynamic compression loading regime. Neither hypoxia under static culture nor hypoxia combined with dynamic compression had significant effects on expression of specific protein and mRNA markers for the fibrocartilaginous matrix-forming phenotype. Mechanical properties significantly increased over the two-week loading period but were not different between static and dynamic-loaded tissues after the loading period. These findings indicate that 3% O(2) applied immediately after scaffold seeding and dynamic compression to 10% strain do not affect the fibrocartilaginous matrix-forming phenotype of human MFCs in this type I collagen scaffold. It is possible that a delayed hypoxia treatment and an optimized pre-culture period and loading regime combination would have led to different outcomes. Public Library of Science 2021-03-10 /pmc/articles/PMC7946300/ /pubmed/33690647 http://dx.doi.org/10.1371/journal.pone.0248292 Text en © 2021 Szojka et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Szojka, Alexander R. A.
Moore, Colleen N.
Liang, Yan
Andrews, Stephen H. J.
Kunze, Melanie
Mulet-Sierra, Aillette
Jomha, Nadr M.
Adesida, Adetola B.
Engineered human meniscus’ matrix-forming phenotype is unaffected by low strain dynamic compression under hypoxic conditions
title Engineered human meniscus’ matrix-forming phenotype is unaffected by low strain dynamic compression under hypoxic conditions
title_full Engineered human meniscus’ matrix-forming phenotype is unaffected by low strain dynamic compression under hypoxic conditions
title_fullStr Engineered human meniscus’ matrix-forming phenotype is unaffected by low strain dynamic compression under hypoxic conditions
title_full_unstemmed Engineered human meniscus’ matrix-forming phenotype is unaffected by low strain dynamic compression under hypoxic conditions
title_short Engineered human meniscus’ matrix-forming phenotype is unaffected by low strain dynamic compression under hypoxic conditions
title_sort engineered human meniscus’ matrix-forming phenotype is unaffected by low strain dynamic compression under hypoxic conditions
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7946300/
https://www.ncbi.nlm.nih.gov/pubmed/33690647
http://dx.doi.org/10.1371/journal.pone.0248292
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