Utilization of patterned bioprinting for heterogeneous and physiologically representative reconstructed epidermal skin models
Abstract Organotypic skin tissue models have decades of use for basic research applications, the treatment of burns, and for efficacy/safety evaluation studies. The complex and heterogeneous nature of native human skin however creates difficulties for the construction of physiologically comparable o...
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2021-03-01
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Online Access: | https://doi.org/10.1038/s41598-021-85553-3 |
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doaj-25902d4945754438aa8651e5d28d17992021-03-21T12:34:47ZengNature Publishing GroupScientific Reports2045-23222021-03-0111111210.1038/s41598-021-85553-3Utilization of patterned bioprinting for heterogeneous and physiologically representative reconstructed epidermal skin modelsSabrina Madiedo-Podvrsan0Jean-Philippe Belaïdi1Stephanie Desbouis2Lucie Simonetti3Youcef Ben-Khalifa4Jérémie Soeur5Maïté Rielland6L’Oréal Research and InnovationL’Oréal Research and InnovationL’Oréal Research and InnovationL’Oréal Research and InnovationL’Oréal Research and InnovationL’Oréal Research and InnovationL’Oréal Research and InnovationAbstract Organotypic skin tissue models have decades of use for basic research applications, the treatment of burns, and for efficacy/safety evaluation studies. The complex and heterogeneous nature of native human skin however creates difficulties for the construction of physiologically comparable organotypic models. Within the present study, we utilized bioprinting technology for the controlled deposition of separate keratinocyte subpopulations to create a reconstructed epidermis with two distinct halves in a single insert, each comprised of a different keratinocyte sub-population, in order to better model heterogonous skin and reduce inter-sample variability. As an initial proof-of-concept, we created a patterned epidermal skin model using GPF positive and negative keratinocyte subpopulations, both printed into 2 halves of a reconstructed skin insert, demonstrating the feasibility of this approach. We then demonstrated the physiological relevance of this bioprinting technique by generating a heterogeneous model comprised of dual keratinocyte population with either normal or low filaggrin expression. The resultant model exhibited a well-organized epidermal structure with each half possessing the phenotypic characteristics of its constituent cells, indicative of a successful and stable tissue reconstruction. This patterned skin model aims to mimic the edge of lesions as seen in atopic dermatitis or ichthyosis vulgaris, while the use of two populations within a single insert allows for paired statistics in evaluation studies, likely increasing study statistical power and reducing the number of models required per study. This is the first report of human patterned epidermal model using a predefined bioprinted designs, and demonstrates the relevance of bioprinting to faithfully reproduce human skin microanatomy.https://doi.org/10.1038/s41598-021-85553-3 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Sabrina Madiedo-Podvrsan Jean-Philippe Belaïdi Stephanie Desbouis Lucie Simonetti Youcef Ben-Khalifa Jérémie Soeur Maïté Rielland |
spellingShingle |
Sabrina Madiedo-Podvrsan Jean-Philippe Belaïdi Stephanie Desbouis Lucie Simonetti Youcef Ben-Khalifa Jérémie Soeur Maïté Rielland Utilization of patterned bioprinting for heterogeneous and physiologically representative reconstructed epidermal skin models Scientific Reports |
author_facet |
Sabrina Madiedo-Podvrsan Jean-Philippe Belaïdi Stephanie Desbouis Lucie Simonetti Youcef Ben-Khalifa Jérémie Soeur Maïté Rielland |
author_sort |
Sabrina Madiedo-Podvrsan |
title |
Utilization of patterned bioprinting for heterogeneous and physiologically representative reconstructed epidermal skin models |
title_short |
Utilization of patterned bioprinting for heterogeneous and physiologically representative reconstructed epidermal skin models |
title_full |
Utilization of patterned bioprinting for heterogeneous and physiologically representative reconstructed epidermal skin models |
title_fullStr |
Utilization of patterned bioprinting for heterogeneous and physiologically representative reconstructed epidermal skin models |
title_full_unstemmed |
Utilization of patterned bioprinting for heterogeneous and physiologically representative reconstructed epidermal skin models |
title_sort |
utilization of patterned bioprinting for heterogeneous and physiologically representative reconstructed epidermal skin models |
publisher |
Nature Publishing Group |
series |
Scientific Reports |
issn |
2045-2322 |
publishDate |
2021-03-01 |
description |
Abstract Organotypic skin tissue models have decades of use for basic research applications, the treatment of burns, and for efficacy/safety evaluation studies. The complex and heterogeneous nature of native human skin however creates difficulties for the construction of physiologically comparable organotypic models. Within the present study, we utilized bioprinting technology for the controlled deposition of separate keratinocyte subpopulations to create a reconstructed epidermis with two distinct halves in a single insert, each comprised of a different keratinocyte sub-population, in order to better model heterogonous skin and reduce inter-sample variability. As an initial proof-of-concept, we created a patterned epidermal skin model using GPF positive and negative keratinocyte subpopulations, both printed into 2 halves of a reconstructed skin insert, demonstrating the feasibility of this approach. We then demonstrated the physiological relevance of this bioprinting technique by generating a heterogeneous model comprised of dual keratinocyte population with either normal or low filaggrin expression. The resultant model exhibited a well-organized epidermal structure with each half possessing the phenotypic characteristics of its constituent cells, indicative of a successful and stable tissue reconstruction. This patterned skin model aims to mimic the edge of lesions as seen in atopic dermatitis or ichthyosis vulgaris, while the use of two populations within a single insert allows for paired statistics in evaluation studies, likely increasing study statistical power and reducing the number of models required per study. This is the first report of human patterned epidermal model using a predefined bioprinted designs, and demonstrates the relevance of bioprinting to faithfully reproduce human skin microanatomy. |
url |
https://doi.org/10.1038/s41598-021-85553-3 |
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