Injectable Gelatin–Farsi Gum Hydrogels Functionalized With Hydroxyapatite for Biomimetic Oral Bone Regeneration.

Objective: Bone repair requires injectable biomaterials that solidify in situ, resist infection, and provide osteoconductive reinforcement. However, it remains unknown whether a photo‐crosslinkable hydrogel can combine silver nanoparticle functionality with hydroxyapatite‐driven mechanical support f...

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Detalles Bibliográficos
Publicado en:BioMed Research International Vol. 2026; pp. 1 - 15
Autores principales: Amiri, Mohammad Amin, Abedanzadeh, Mozhgan, Daneshi, Seyyed Sajad, Najibi, Asma, Zarei, Moein, Afzoon, Saeed, Akbarizadeh, Fatemeh, Kazemi, Radmehr, Fereidouni, Kiarash, Norouzi, Mohammad, Niknezhad, Seyyed Vahid, Lavaee, Fatemeh, Klug, Yoel A.
Formato: diagnostic images equations & formulas pictorial research tables/charts Journal Article
Publicado: Wiley-Blackwell 8/7/2026
Acceso en línea:Ver este registro en EBSCOhost
Descripción
Sumario:Objective: Bone repair requires injectable biomaterials that solidify in situ, resist infection, and provide osteoconductive reinforcement. However, it remains unknown whether a photo‐crosslinkable hydrogel can combine silver nanoparticle functionality with hydroxyapatite‐driven mechanical support for mandibular regeneration. Methods: An injectable hydrogel was synthesized from gelatin methacrylate and methacrylated Farsi gum, functionalized with silver nanoparticles and hydroxyapatite (0%, 5%, and 10% w/w). Chemistry and phase integration were verified by Fourier‐transform infrared spectroscopy, x‐ray diffraction, and proton nuclear magnetic resonance; swelling, degradation, porosity, and compression (including cyclic loading) were assessed at 5 and 12 weeks using radiography and histology; and rat mandibular healing was assessed at 5 and 12 weeks by radiography and histology. Results: Spectroscopic and diffraction analyses confirmed incorporation of all components. All formulations showed controlled swelling/degradation with porous architectures. Hydroxyapatite increased compressive performance, with 10% w/w yielding the highest strength and elastic recovery under repeated compression. In rat mandibles, the 10% hydroxyapatite hydrogel supported bone regeneration on radiographic and histologic assessment at Weeks 5 and 12. Conclusions: These data show a single injectable platform that combines antimicrobial and anti‐inflammatory functions with osteoconductive support, paving the way for minimally invasive craniofacial and orthopedic bone repair.