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Development of Liver-on-Chip Integrating a Hydroscaffold Mimicking the Liver’s Extracellular Matrix

The 3Rs guidelines recommend replacing animal testing with alternative models. One of the solutions proposed is organ-on-chip technology in which liver-on-chip is one of the most promising alternatives for drug screening and toxicological assays. The main challenge is to achieve the relevant in vivo...

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Autores principales: Messelmani, Taha, Le Goff, Anne, Souguir, Zied, Maes, Victoria, Roudaut, Méryl, Vandenhaute, Elodie, Maubon, Nathalie, Legallais, Cécile, Leclerc, Eric, Jellali, Rachid
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9495334/
https://www.ncbi.nlm.nih.gov/pubmed/36134989
http://dx.doi.org/10.3390/bioengineering9090443
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author Messelmani, Taha
Le Goff, Anne
Souguir, Zied
Maes, Victoria
Roudaut, Méryl
Vandenhaute, Elodie
Maubon, Nathalie
Legallais, Cécile
Leclerc, Eric
Jellali, Rachid
author_facet Messelmani, Taha
Le Goff, Anne
Souguir, Zied
Maes, Victoria
Roudaut, Méryl
Vandenhaute, Elodie
Maubon, Nathalie
Legallais, Cécile
Leclerc, Eric
Jellali, Rachid
author_sort Messelmani, Taha
collection PubMed
description The 3Rs guidelines recommend replacing animal testing with alternative models. One of the solutions proposed is organ-on-chip technology in which liver-on-chip is one of the most promising alternatives for drug screening and toxicological assays. The main challenge is to achieve the relevant in vivo-like functionalities of the liver tissue in an optimized cellular microenvironment. Here, we investigated the development of hepatic cells under dynamic conditions inside a 3D hydroscaffold embedded in a microfluidic device. The hydroscaffold is made of hyaluronic acid and composed of liver extracellular matrix components (galactosamine, collagen I/IV) with RGDS (Arg-Gly-Asp-Ser) sites for cell adhesion. The HepG2/C3A cell line was cultured under a flow rate of 10 µL/min for 21 days. After seeding, the cells formed aggregates and proliferated, forming 3D spheroids. The cell viability, functionality, and spheroid integrity were investigated and compared to static cultures. The results showed a 3D aggregate organization of the cells up to large spheroid formations, high viability and albumin production, and an enhancement of HepG2 cell functionalities. Overall, these results highlighted the role of the liver-on-chip model coupled with a hydroscaffold in the enhancement of cell functions and its potential for engineering a relevant liver model for drug screening and disease study.
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spelling pubmed-94953342022-09-23 Development of Liver-on-Chip Integrating a Hydroscaffold Mimicking the Liver’s Extracellular Matrix Messelmani, Taha Le Goff, Anne Souguir, Zied Maes, Victoria Roudaut, Méryl Vandenhaute, Elodie Maubon, Nathalie Legallais, Cécile Leclerc, Eric Jellali, Rachid Bioengineering (Basel) Article The 3Rs guidelines recommend replacing animal testing with alternative models. One of the solutions proposed is organ-on-chip technology in which liver-on-chip is one of the most promising alternatives for drug screening and toxicological assays. The main challenge is to achieve the relevant in vivo-like functionalities of the liver tissue in an optimized cellular microenvironment. Here, we investigated the development of hepatic cells under dynamic conditions inside a 3D hydroscaffold embedded in a microfluidic device. The hydroscaffold is made of hyaluronic acid and composed of liver extracellular matrix components (galactosamine, collagen I/IV) with RGDS (Arg-Gly-Asp-Ser) sites for cell adhesion. The HepG2/C3A cell line was cultured under a flow rate of 10 µL/min for 21 days. After seeding, the cells formed aggregates and proliferated, forming 3D spheroids. The cell viability, functionality, and spheroid integrity were investigated and compared to static cultures. The results showed a 3D aggregate organization of the cells up to large spheroid formations, high viability and albumin production, and an enhancement of HepG2 cell functionalities. Overall, these results highlighted the role of the liver-on-chip model coupled with a hydroscaffold in the enhancement of cell functions and its potential for engineering a relevant liver model for drug screening and disease study. MDPI 2022-09-05 /pmc/articles/PMC9495334/ /pubmed/36134989 http://dx.doi.org/10.3390/bioengineering9090443 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Messelmani, Taha
Le Goff, Anne
Souguir, Zied
Maes, Victoria
Roudaut, Méryl
Vandenhaute, Elodie
Maubon, Nathalie
Legallais, Cécile
Leclerc, Eric
Jellali, Rachid
Development of Liver-on-Chip Integrating a Hydroscaffold Mimicking the Liver’s Extracellular Matrix
title Development of Liver-on-Chip Integrating a Hydroscaffold Mimicking the Liver’s Extracellular Matrix
title_full Development of Liver-on-Chip Integrating a Hydroscaffold Mimicking the Liver’s Extracellular Matrix
title_fullStr Development of Liver-on-Chip Integrating a Hydroscaffold Mimicking the Liver’s Extracellular Matrix
title_full_unstemmed Development of Liver-on-Chip Integrating a Hydroscaffold Mimicking the Liver’s Extracellular Matrix
title_short Development of Liver-on-Chip Integrating a Hydroscaffold Mimicking the Liver’s Extracellular Matrix
title_sort development of liver-on-chip integrating a hydroscaffold mimicking the liver’s extracellular matrix
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9495334/
https://www.ncbi.nlm.nih.gov/pubmed/36134989
http://dx.doi.org/10.3390/bioengineering9090443
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