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Development of 3D Hepatic Constructs Within Polysaccharide-Based Scaffolds with Tunable Properties

Organoids production is a key tool for in vitro studies of physiopathological conditions, drug-induced toxicity assays, and for a potential use in regenerative medicine. Hence, it prompted studies on hepatic organoids and liver regeneration. Numerous attempts to produce hepatic constructs had often...

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Autores principales: Labour, Marie-Noëlle, Le Guilcher, Camile, Aid-Launais, Rachida, El Samad, Nour, Lanouar, Soraya, Simon-Yarza, Teresa, Letourneur, Didier
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7279349/
https://www.ncbi.nlm.nih.gov/pubmed/32455711
http://dx.doi.org/10.3390/ijms21103644
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author Labour, Marie-Noëlle
Le Guilcher, Camile
Aid-Launais, Rachida
El Samad, Nour
Lanouar, Soraya
Simon-Yarza, Teresa
Letourneur, Didier
author_facet Labour, Marie-Noëlle
Le Guilcher, Camile
Aid-Launais, Rachida
El Samad, Nour
Lanouar, Soraya
Simon-Yarza, Teresa
Letourneur, Didier
author_sort Labour, Marie-Noëlle
collection PubMed
description Organoids production is a key tool for in vitro studies of physiopathological conditions, drug-induced toxicity assays, and for a potential use in regenerative medicine. Hence, it prompted studies on hepatic organoids and liver regeneration. Numerous attempts to produce hepatic constructs had often limited success due to a lack of viability or functionality. Moreover, most products could not be translated for clinical studies. The aim of this study was to develop functional and viable hepatic constructs using a 3D porous scaffold with an adjustable structure, devoid of any animal component, that could also be used as an in vivo implantable system. We used a combination of pharmaceutical grade pullulan and dextran with different porogen formulations to form crosslinked scaffolds with macroporosity ranging from 30 µm to several hundreds of microns. Polysaccharide scaffolds were easy to prepare and to handle, and allowed confocal observations thanks to their transparency. A simple seeding method allowed a rapid impregnation of the scaffolds with HepG2 cells and a homogeneous cell distribution within the scaffolds. Cells were viable over seven days and form spheroids of various geometries and sizes. Cells in 3D express hepatic markers albumin, HNF4α and CYP3A4, start to polarize and were sensitive to acetaminophen in a concentration-dependant manner. Therefore, this study depicts a proof of concept for organoid production in 3D scaffolds that could be prepared under GMP conditions for reliable drug-induced toxicity studies and for liver tissue engineering.
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spelling pubmed-72793492020-06-17 Development of 3D Hepatic Constructs Within Polysaccharide-Based Scaffolds with Tunable Properties Labour, Marie-Noëlle Le Guilcher, Camile Aid-Launais, Rachida El Samad, Nour Lanouar, Soraya Simon-Yarza, Teresa Letourneur, Didier Int J Mol Sci Article Organoids production is a key tool for in vitro studies of physiopathological conditions, drug-induced toxicity assays, and for a potential use in regenerative medicine. Hence, it prompted studies on hepatic organoids and liver regeneration. Numerous attempts to produce hepatic constructs had often limited success due to a lack of viability or functionality. Moreover, most products could not be translated for clinical studies. The aim of this study was to develop functional and viable hepatic constructs using a 3D porous scaffold with an adjustable structure, devoid of any animal component, that could also be used as an in vivo implantable system. We used a combination of pharmaceutical grade pullulan and dextran with different porogen formulations to form crosslinked scaffolds with macroporosity ranging from 30 µm to several hundreds of microns. Polysaccharide scaffolds were easy to prepare and to handle, and allowed confocal observations thanks to their transparency. A simple seeding method allowed a rapid impregnation of the scaffolds with HepG2 cells and a homogeneous cell distribution within the scaffolds. Cells were viable over seven days and form spheroids of various geometries and sizes. Cells in 3D express hepatic markers albumin, HNF4α and CYP3A4, start to polarize and were sensitive to acetaminophen in a concentration-dependant manner. Therefore, this study depicts a proof of concept for organoid production in 3D scaffolds that could be prepared under GMP conditions for reliable drug-induced toxicity studies and for liver tissue engineering. MDPI 2020-05-21 /pmc/articles/PMC7279349/ /pubmed/32455711 http://dx.doi.org/10.3390/ijms21103644 Text en © 2020 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Labour, Marie-Noëlle
Le Guilcher, Camile
Aid-Launais, Rachida
El Samad, Nour
Lanouar, Soraya
Simon-Yarza, Teresa
Letourneur, Didier
Development of 3D Hepatic Constructs Within Polysaccharide-Based Scaffolds with Tunable Properties
title Development of 3D Hepatic Constructs Within Polysaccharide-Based Scaffolds with Tunable Properties
title_full Development of 3D Hepatic Constructs Within Polysaccharide-Based Scaffolds with Tunable Properties
title_fullStr Development of 3D Hepatic Constructs Within Polysaccharide-Based Scaffolds with Tunable Properties
title_full_unstemmed Development of 3D Hepatic Constructs Within Polysaccharide-Based Scaffolds with Tunable Properties
title_short Development of 3D Hepatic Constructs Within Polysaccharide-Based Scaffolds with Tunable Properties
title_sort development of 3d hepatic constructs within polysaccharide-based scaffolds with tunable properties
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7279349/
https://www.ncbi.nlm.nih.gov/pubmed/32455711
http://dx.doi.org/10.3390/ijms21103644
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