Cargando…
In-process monitoring of a tissue-engineered oral mucosa fabricated on a micropatterned collagen scaffold: use of optical coherence tomography for quality control
BACKGROUND: We previously reported a novel technique for fabricating dermo-epidermal junction (DEJ)-like micropatterned collagen scaffolds to manufacture an ex vivo produced oral mucosa equivalent (EVPOME) for clinical translation; however, more biomimetic micropatterns are required to promote oral...
Autores principales: | , , , , , , , , , , , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
Elsevier
2022
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9667272/ https://www.ncbi.nlm.nih.gov/pubmed/36406717 http://dx.doi.org/10.1016/j.heliyon.2022.e11468 |
_version_ | 1784831689798713344 |
---|---|
author | Suebsamarn, O. Kamimura, Y. Suzuki, A. Kodama, Y. Mizuno, R. Osawa, Y. Komatsu, T. Sato, T. Haga, K. Kobayashi, R. Naito, E. Kida, M. Kishimoto, K. Mizuno, J. Hayasaki, H. Izumi, K. |
author_facet | Suebsamarn, O. Kamimura, Y. Suzuki, A. Kodama, Y. Mizuno, R. Osawa, Y. Komatsu, T. Sato, T. Haga, K. Kobayashi, R. Naito, E. Kida, M. Kishimoto, K. Mizuno, J. Hayasaki, H. Izumi, K. |
author_sort | Suebsamarn, O. |
collection | PubMed |
description | BACKGROUND: We previously reported a novel technique for fabricating dermo-epidermal junction (DEJ)-like micropatterned collagen scaffolds to manufacture an ex vivo produced oral mucosa equivalent (EVPOME) for clinical translation; however, more biomimetic micropatterns are required to promote oral keratinocyte-based tissue engineering/regenerative medicine. In addition, in-process monitoring for quality control of tissue-engineered products is key to successful clinical outcomes. However, evaluating three-dimensional tissue-engineered constructs such as EVPOME is challenging. This study aimed to update our technique to fabricate a more biomimetic DEJ structure of oral mucosa and to investigate the efficacy of optical coherence tomography (OCT) in combination with deep learning for non-invasive EVPOME monitoring. METHODS: A picosecond laser-textured microstructure mimicking DEJ on stainless steel was used as a negative mould to fabricate the micropatterned collagen scaffold. During EVPOME manufacturing, OCT was applied twice to monitor the EVPOME and evaluate its epithelial thickness. FINDINGS: Our moulding system resulted in successful micropattern replication on the curved collagen scaffold. OCT imaging visualised the epithelial layer and the underlying micropatterned scaffold in EVPOME, enabling to non-invasively detect specific defects not found before the histological examination. Additionally, a gradual increase in epithelial thickness was observed over time. CONCLUSION: These findings demonstrate the feasibility of using a stainless-steel negative mould to create a more biomimetic micropattern on collagen scaffolds and the potential of OCT imaging for quality control in oral keratinocyte-based tissue engineering/regenerative medicine. |
format | Online Article Text |
id | pubmed-9667272 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2022 |
publisher | Elsevier |
record_format | MEDLINE/PubMed |
spelling | pubmed-96672722022-11-17 In-process monitoring of a tissue-engineered oral mucosa fabricated on a micropatterned collagen scaffold: use of optical coherence tomography for quality control Suebsamarn, O. Kamimura, Y. Suzuki, A. Kodama, Y. Mizuno, R. Osawa, Y. Komatsu, T. Sato, T. Haga, K. Kobayashi, R. Naito, E. Kida, M. Kishimoto, K. Mizuno, J. Hayasaki, H. Izumi, K. Heliyon Research Article BACKGROUND: We previously reported a novel technique for fabricating dermo-epidermal junction (DEJ)-like micropatterned collagen scaffolds to manufacture an ex vivo produced oral mucosa equivalent (EVPOME) for clinical translation; however, more biomimetic micropatterns are required to promote oral keratinocyte-based tissue engineering/regenerative medicine. In addition, in-process monitoring for quality control of tissue-engineered products is key to successful clinical outcomes. However, evaluating three-dimensional tissue-engineered constructs such as EVPOME is challenging. This study aimed to update our technique to fabricate a more biomimetic DEJ structure of oral mucosa and to investigate the efficacy of optical coherence tomography (OCT) in combination with deep learning for non-invasive EVPOME monitoring. METHODS: A picosecond laser-textured microstructure mimicking DEJ on stainless steel was used as a negative mould to fabricate the micropatterned collagen scaffold. During EVPOME manufacturing, OCT was applied twice to monitor the EVPOME and evaluate its epithelial thickness. FINDINGS: Our moulding system resulted in successful micropattern replication on the curved collagen scaffold. OCT imaging visualised the epithelial layer and the underlying micropatterned scaffold in EVPOME, enabling to non-invasively detect specific defects not found before the histological examination. Additionally, a gradual increase in epithelial thickness was observed over time. CONCLUSION: These findings demonstrate the feasibility of using a stainless-steel negative mould to create a more biomimetic micropattern on collagen scaffolds and the potential of OCT imaging for quality control in oral keratinocyte-based tissue engineering/regenerative medicine. Elsevier 2022-11-08 /pmc/articles/PMC9667272/ /pubmed/36406717 http://dx.doi.org/10.1016/j.heliyon.2022.e11468 Text en © 2022 The Author(s) https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/). |
spellingShingle | Research Article Suebsamarn, O. Kamimura, Y. Suzuki, A. Kodama, Y. Mizuno, R. Osawa, Y. Komatsu, T. Sato, T. Haga, K. Kobayashi, R. Naito, E. Kida, M. Kishimoto, K. Mizuno, J. Hayasaki, H. Izumi, K. In-process monitoring of a tissue-engineered oral mucosa fabricated on a micropatterned collagen scaffold: use of optical coherence tomography for quality control |
title | In-process monitoring of a tissue-engineered oral mucosa fabricated on a micropatterned collagen scaffold: use of optical coherence tomography for quality control |
title_full | In-process monitoring of a tissue-engineered oral mucosa fabricated on a micropatterned collagen scaffold: use of optical coherence tomography for quality control |
title_fullStr | In-process monitoring of a tissue-engineered oral mucosa fabricated on a micropatterned collagen scaffold: use of optical coherence tomography for quality control |
title_full_unstemmed | In-process monitoring of a tissue-engineered oral mucosa fabricated on a micropatterned collagen scaffold: use of optical coherence tomography for quality control |
title_short | In-process monitoring of a tissue-engineered oral mucosa fabricated on a micropatterned collagen scaffold: use of optical coherence tomography for quality control |
title_sort | in-process monitoring of a tissue-engineered oral mucosa fabricated on a micropatterned collagen scaffold: use of optical coherence tomography for quality control |
topic | Research Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9667272/ https://www.ncbi.nlm.nih.gov/pubmed/36406717 http://dx.doi.org/10.1016/j.heliyon.2022.e11468 |
work_keys_str_mv | AT suebsamarno inprocessmonitoringofatissueengineeredoralmucosafabricatedonamicropatternedcollagenscaffolduseofopticalcoherencetomographyforqualitycontrol AT kamimuray inprocessmonitoringofatissueengineeredoralmucosafabricatedonamicropatternedcollagenscaffolduseofopticalcoherencetomographyforqualitycontrol AT suzukia inprocessmonitoringofatissueengineeredoralmucosafabricatedonamicropatternedcollagenscaffolduseofopticalcoherencetomographyforqualitycontrol AT kodamay inprocessmonitoringofatissueengineeredoralmucosafabricatedonamicropatternedcollagenscaffolduseofopticalcoherencetomographyforqualitycontrol AT mizunor inprocessmonitoringofatissueengineeredoralmucosafabricatedonamicropatternedcollagenscaffolduseofopticalcoherencetomographyforqualitycontrol AT osaway inprocessmonitoringofatissueengineeredoralmucosafabricatedonamicropatternedcollagenscaffolduseofopticalcoherencetomographyforqualitycontrol AT komatsut inprocessmonitoringofatissueengineeredoralmucosafabricatedonamicropatternedcollagenscaffolduseofopticalcoherencetomographyforqualitycontrol AT satot inprocessmonitoringofatissueengineeredoralmucosafabricatedonamicropatternedcollagenscaffolduseofopticalcoherencetomographyforqualitycontrol AT hagak inprocessmonitoringofatissueengineeredoralmucosafabricatedonamicropatternedcollagenscaffolduseofopticalcoherencetomographyforqualitycontrol AT kobayashir inprocessmonitoringofatissueengineeredoralmucosafabricatedonamicropatternedcollagenscaffolduseofopticalcoherencetomographyforqualitycontrol AT naitoe inprocessmonitoringofatissueengineeredoralmucosafabricatedonamicropatternedcollagenscaffolduseofopticalcoherencetomographyforqualitycontrol AT kidam inprocessmonitoringofatissueengineeredoralmucosafabricatedonamicropatternedcollagenscaffolduseofopticalcoherencetomographyforqualitycontrol AT kishimotok inprocessmonitoringofatissueengineeredoralmucosafabricatedonamicropatternedcollagenscaffolduseofopticalcoherencetomographyforqualitycontrol AT mizunoj inprocessmonitoringofatissueengineeredoralmucosafabricatedonamicropatternedcollagenscaffolduseofopticalcoherencetomographyforqualitycontrol AT hayasakih inprocessmonitoringofatissueengineeredoralmucosafabricatedonamicropatternedcollagenscaffolduseofopticalcoherencetomographyforqualitycontrol AT izumik inprocessmonitoringofatissueengineeredoralmucosafabricatedonamicropatternedcollagenscaffolduseofopticalcoherencetomographyforqualitycontrol |