Micropatterning of endothelial cells to create a capillary-like network with defined architecture by laser-assisted bioprinting

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作者
Olivia Kérourédan
Jean-Michel Bourget
Murielle Rémy
Sylvie Crauste-Manciet
Jérôme Kalisky
Sylvain Catros
Noëlie B. Thébaud
Raphaël Devillard
机构
[1] INSERM,Energie, matériaux et télécommunication
[2] Bioingénierie Tissulaire,undefined
[3] U1026,undefined
[4] Université de Bordeaux,undefined
[5] Bioingénierie Tissulaire,undefined
[6] U1026,undefined
[7] CHU de Bordeaux,undefined
[8] Services d’Odontologie et de Santé Buccale,undefined
[9] Université de Bordeaux,undefined
[10] ARNA Laboratory,undefined
[11] team ChemBioPharm,undefined
[12] U1212 INSERM – UMR 5320 CNRS,undefined
[13] CHU de Bordeaux,undefined
[14] Pharmacie du Groupe Hospitalier Sud,undefined
[15] Institut National de Recherche Scientifique,undefined
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摘要
Development of a microvasculature into tissue-engineered bone substitutes represents a current challenge. Seeding of endothelial cells in an appropriate environment can give rise to a capillary-like network to enhance prevascularization of bone substitutes. Advances in biofabrication techniques, such as bioprinting, could allow to precisely define a pattern of endothelial cells onto a biomaterial suitable for in vivo applications. The aim of this study was to produce a microvascular network following a defined pattern and preserve it while preparing the surface to print another layer of endothelial cells. We first optimise the bioink cell concentration and laser printing parameters and then develop a method to allow endothelial cells to survive between two collagen layers. Laser-assisted bioprinting (LAB) was used to pattern lines of tdTomato-labeled endothelial cells cocultured with mesenchymal stem cells seeded onto a collagen hydrogel. Formation of capillary-like structures was dependent on a sufficient local density of endothelial cells. Overlay of the pattern with collagen I hydrogel containing vascular endothelial growth factor (VEGF) allowed capillary-like structures formation and preservation of the printed pattern over time. Results indicate that laser-assisted bioprinting is a valuable technique to pre-organize endothelial cells into high cell density pattern in order to create a vascular network with defined architecture in tissue-engineered constructs based on collagen hydrogel.
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