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Protocols of 3D Bioprinting of Gelatin Methacryloyl Hydrogel Based Bioinks
Published on: December 21, 2019
Process-optimized gelatin methacryloyl-konjac glucomannan dual-network hydrogels for stable and reproducible
Laura Mendoza-Cerezo1, Jesús M Rodríguez-Rego2, Antonio Macías-García3
1Departamento de Expresión Gráfica, Escuela Técnica Superior de Ingenieros Industriales, Universidad de Extremadura, Avenida de Elvas, s/n., 06006, Badajoz. Spain; Departamento de Bioquímica, Biología Molecular y Genética, Facultad de Ciencias, Universidad de Extremadura, Avenida de Elvas, s/n., 06006, Badajoz. Spain.
Abstract:
Dual-network hydrogels are promising candidates for extrusion-based bioprinting because they combine reversible physical interactions with covalent stabilization, enabling controlled flow during printing and structural integrity after deposition. Here, we present a hybrid gelatin methacryloyl (GelMA)-konjac glucomannan (KGM) hydrogel in which KGM forms a physically crosslinked network mediated by hydrogen-bond interactions under physiological pH (7.5) and temperature (37 °C), while the GelMA phase provides covalent stabilization upon photocrosslinking. Rheological analysis demonstrated increased low-shear viscosity, pronounced shear-thinning behavior, and rapid structural recovery after deformation. These properties significantly reduced the extrusion force required to achieve continuous and stable filaments and improved the fidelity of multilayer constructs. Mechanical characterization revealed tunable stiffness and enhanced self-supporting capacity, supporting shape retention and mechanical stability, as confirmed by compressive modulus measurements and post-printing structural stability. Cytocompatibility assays confirmed preserved metabolic activity and membrane integrity in contact with cultured cells. Overall, the GelMA-KGM dual-network hydrogel represents a process-optimized bioink platform for stable and reproducible extrusion-based 3D bioprinting, without the need for ionic crosslinking, particulate fillers, or additional chemical additives.

