Gelatin hydrogels combine biological origin, biodegradability, abundant chemical functionality, and broad processability, but their native thermoreversible physical networks generally lack the stability required for sustained operation. Crosslinking overcomes this limitation while regulating hydration, mechanics, transport, degradation, and responsiveness. This review examines gelatin hydrogel crosslinking from a structure–property–function perspective, connecting molecular design with physicochemical characterization and functional performance. Temperature-induced gelation and ion-mediated physical interactions are compared with small-molecule- and coupling-agent-mediated, enzyme-catalyzed, and photoinduced covalent crosslinking strategies, highlighting their different balances among reversibility, stability, processability, and biocompatibility. Particular attention is given to the characterization methods required to relate junction chemistry and network organization to swelling, thermal behavior, mechanical response, degradation, and molecular or ionic transport. These relationships are evaluated across drug delivery and controlled release, tissue engineering and wound healing, food packaging, preservation and delivery, water remediation and environmental management, wearable sensing and bioelectronics, and energy storage. Across these fields, the central challenge is not to maximize crosslinking, but to balance network stability with the molecular mobility required for function. By integrating complementary crosslinking mechanisms with multiscale characterization, gelatin can be engineered as a programmable platform for advanced soft materials.
Population aging and the rising burden of trauma and chronic disease have increased the demands placed on biomedical hydrogels. In addition to biocompatibility, these materials are expected to provide mechanical support, processability, and environmental responsiveness. A single crosslinked network rarely balances all...
Xun-Wei Gan, Lian-Yong Wang· International Journal of Bio...· 0 citations
Hydrogels are functional polymeric materials with a three-dimensional network hydrophilic structure. Benefiting from excellent biocompatibility, high water retention, and tunable physicochemical properties, they have become a research hotspot in food, biomedicine, and other fields. This paper systematically reviews the...
Zi-Xi Wang· Journal of Food Science, Nut...· 0 citations
Smart hydrogels are increasingly explored as adaptive platforms for controlled drug delivery because their polymer networks can respond dynamically to chemical, biological, and physical cues. Among these systems, dynamic polymer networks formed through reversible covalent and noncovalent interactions provide a unique m...
Chan-Ju Choi, Dongseong Seo, Taeho Kim et al.· Gels· 0 citations
Nanocellulose hydrogels are gaining traction as sustainable soft materials, thanks to the high surface area, abundant hydroxyl groups, mechanical strength, biocompatibility, and renewability of cellulose nanocrystals and nanofibers. Unlike conventional synthetic polymer hydrogels, those based on nanocellulose offer dis...
Yan-Hua Liu, Zheng Xu, Peng-Jun Zhao et al.· Journal of Solid Waste Valor...· 0 citations
Gelatin is a natural biopolymer derived from collagen and is widely employed in biomedical applications because of its biocompatibility, biodegradability, low toxicity, water solubility, and intrinsic thermo-responsive gelation behavior. Owing to the presence of bioactive motifs and its ability to form hydrogels under...
Federica Gemignani, G. Mesiano, Pompeo Marco Gaudiosi et al.· Gels· 0 citations
Hydrogels based on chemically modified gelatin offer a promising platform for bone-regenerative applications due to their biocompatibility, biodegradability, and capacity for controlled network formation. In this study, dual-functionalised gelatin-methacryloyl-norbornene (gel-MA-NB) derivatives were developed to enable...
Anna Mokry, M. Meeremans, N. Pien et al.· International Journal of Bio...· 0 citations
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