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Printing Thermoresponsive Reverse Molds for the Creation of Patterned Two-component Hydrogels for 3D Cell Culture
Published on: July 10, 2013
Fabrication of Double-Network Hydrogel Based on N,O-carboxymethyl chitosan, Aldehyde Hyaluronate, and Alginate for 3D
Binh Thanh Vu1,2, Tuan-Ngan Tang1,2, Dai-Tin Luong1,2
1Tissue Engineering and Regenerative Medicine Department, School of Biomedical Engineering, International University, Ho Chi Minh City, Vietnam.
Abstract:
This study fabricates and characterizes novel double-network hydrogels for 3D bio-ink applications, combining N,O-carboxymethyl chitosan (NOCC), aldehyde hyaluronate (AHy), and alginate (Alg). The initial Schiff base-cross-linked network (NOCC-AHy-Alg) is enhanced with a second ionic Ca2+ cross-linking, optimized via an internal suspension method (CaCO3/glucono-δ-lactone). Optimal parameters are 0.2 m CaCO3 and 0.1 m glucono-δ-lactone with a 1-h immersion, proving superior to external CaCl2 immersion. This internal approach yields a more robust network with improved compressive strength, dimensional stability, and lower porosity, requiring sustained Ca2+ for long-term stability. The hydrogels also demonstrate excellent self-recovery and energy dissipation, indicating potential for 3D printing. In vitro studies confirm biocompatibility with L929 and AT-MSCs. Overall, these double-network hydrogels show significant promise as advanced bio-inks for tissue engineering and other biomedical uses.

