Article (Scientific journals)
Double-Network Hydrogel 3D BioPrinting Biocompatible with Fibroblast Cells for Tissue Engineering Applications.
Greco, Immacolata; Machrafi, Hatim; Iorio, Carlo S
2024In Gels, 10 (11), p. 684
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Keywords :
biocompatibility; bioprinting; double network; hydrogels; tissue engineering; Bioengineering; Biomaterials; Organic Chemistry; Polymers and Plastics
Abstract :
[en] The present study examines the formulation of a biocompatible hydrogel bioink for 3D bioprinting, integrating poly(ethylene glycol) diacrylate (PEGDA) and sodium alginate (SA) using a double-network approach. These materials were chosen for their synergistic qualities, with PEGDA contributing to mechanical integrity and SA ensuring biocompatibility. Fibroblast cells were included in the bioink and printed with a Reg4Life bioprinter employing micro-extrusion technology. The optimisation of printing parameters included needle size and flow velocities. This led to precise structure development and yielded results with a negligible deviation in printed angles and better control of line widths. The rheological characteristics of the bioink were evaluated, demonstrating appropriate viscosity and shear-thinning behaviour for efficient extrusion. The mechanical characterisation revealed an average compressive modulus of 0.38 MPa, suitable for tissue engineering applications. The printability of the bioink was further confirmed through the evaluations of morphology and diffusion rates, confirming structural integrity. Biocompatibility assessments demonstrated a high cell viability rate of 82.65% following 48 h of incubation, supporting the bioink's suitability for facilitating cell survival. This study introduced a reliable technique for producing tissue-engineered scaffolds that exhibit outstanding mechanical characteristics and cell viability, highlighting the promise of PEGDA-SA hydrogels in bioprinting applications.
Disciplines :
Materials science & engineering
Author, co-author :
Greco, Immacolata ;  Center for Research and Engineering in Space Technologies, Université Libre de Bruxelles, 1050 Brussels, Belgium
Machrafi, Hatim  ;  Université de Liège - ULiège > Département d'astrophysique, géophysique et océanographie (AGO) > Thermodynamique des phénomènes irréversibles ; Center for Research and Engineering in Space Technologies, Université Libre de Bruxelles, 1050 Brussels, Belgium
Iorio, Carlo S;  Center for Research and Engineering in Space Technologies, Université Libre de Bruxelles, 1050 Brussels, Belgium
Language :
English
Title :
Double-Network Hydrogel 3D BioPrinting Biocompatible with Fibroblast Cells for Tissue Engineering Applications.
Publication date :
23 October 2024
Journal title :
Gels
eISSN :
2310-2861
Publisher :
MDPI, Switzerland
Volume :
10
Issue :
11
Pages :
684
Peer reviewed :
Peer Reviewed verified by ORBi
Funders :
BELSPO - Belgian Federal Science Policy Office
ESA - European Space Agency
Funding text :
This work was funded by the FST project, number 4000144304, from Belspo and the European Space Agency (ESA).The authors acknowledge the financial support of ESA-Prodex and Belspo. The authors would like to thank Rachele Veneruso, a student at the University of Naples Federico II, for her assistance with the experiment during this research.
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since 06 February 2026

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