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  5. Synergizing bioprinting and 3D cell culture to enhance tissue formation in printed synthetic constructs

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Article
en
2025

Synergizing bioprinting and 3D cell culture to enhance tissue formation in printed synthetic constructs

0 Datasets

0 Files

en
2025
Vol 17 (2)
Vol. 17
DOI: 10.1088/1758-5090/adae37

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Peter Carmeliet
Peter Carmeliet

Aarhus University

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Daniel Günther
Cédric Bergerbit
Ary Marsee
+11 more

Abstract

Abstract Bioprinting is currently the most promising method to biofabricate complex tissues in vitro with the potential to transform the future of organ transplantation and drug discovery. Efforts to create such tissues are, however, almost exclusively based on animal-derived materials, such as gelatin methacryloyl, which have demonstrated efficacy in bioprinting of complex tissues. While these materials are already used in clinical applications, uncertainty about their safety still remains due to their animal origin. Alternatively, synthetic bioinks have been developed that match the printability of natural bioinks but lack their biological complexity, and thereby often fail to support cell growth and facilitate tissue formation. Additionally, most synthetic materials do not meet the mechanical demands of bioprint stable constructs while providing a suitable environment for cells to grow, limiting the number of available bioinks. To bridge this gap and synergize bioprinting and 3D cell culture, we developed a polyethylene glycol-based bioink system to promote the growth and spreading of cell spheroids that consist of human primary endothelial cells and fibroblasts. The 3D bioprinted centimeter-scale constructs have a high shape fidelity and accelerated softening to provide sufficient space for cells to grow. Adjusting the rate of degradability, induced by the integration of ester-functionalized crosslinkers in addition to protease cleavable crosslinkers into the hydrogel network, improves the growth of spheroids in larger printed hydrogel constructs containing an interconnected channel structure. The perfusable constructs enable extensive spheroid sprouting and the formation of a cellular network upon fusion of sprouts as initial steps toward tissue formation with the potential for clinical translation.

How to cite this publication

Daniel Günther, Cédric Bergerbit, Ary Marsee, Sitara Vedaraman, Alba Pueyo Moliner, Céline Bastard, Guy Eelen, José Gerardo‐Nava, Mieke Dewerchin, Peter Carmeliet, Rafael Kramann, Kerstin Schneeberger, Bart Spee, Laura De Laporte (2025). Synergizing bioprinting and 3D cell culture to enhance tissue formation in printed synthetic constructs. , 17(2), DOI: https://doi.org/10.1088/1758-5090/adae37.

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Publication Details

Type

Article

Year

2025

Authors

14

Datasets

0

Total Files

0

Language

en

DOI

https://doi.org/10.1088/1758-5090/adae37

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