AI Article Synopsis

  • Large bone defects from fractures and diseases pose significant healing challenges, which existing bioceramics like calcium phosphate struggle to address in complicated cases like infections.
  • A new bioceramic, zinc-strontium phosphate (ZSP), shows promise due to its antibacterial and angiogenic properties, but research on its biomedical applications is limited.
  • This study developed a GGA-ZSP hydrogel that combines antioxidant gallic acid-grafted gelatin with ZSP, demonstrating strong biocompatibility, osteogenic potential, and improved bone regeneration in models, suggesting its effectiveness in treating large bone defects.

Article Abstract

Large bone defects resulting from fractures and diseases have become a significant medical concern, usually impeding spontaneous healing through the body's self-repair mechanism. Calcium phosphate (CaP) bioceramics are widely utilized for bone regeneration, owing to their exceptional biocompatibility and osteoconductivity. However, their bioactivities in repairing healing-impaired bone defects characterized by conditions such as ischemia and infection remain limited. Recently, an emerging bioceramics zinc-strontium phosphate (ZSP, ZnSr(PO4)) has received increasing attention due to its remarkable antibacterial and angiogenic abilities, while its plausible biomedical utility on tissue regeneration is nonetheless few. In this study, gallic acid-grafted gelatin (GGA) with antioxidant properties was injected into hydrogels to scavenge reactive oxygen species and regulate bone microenvironment while simultaneously incorporating ZSP to form GGA-ZSP hydrogels. The GGA-ZSP hydrogel exhibits low swelling, and cell experiments have demonstrated its favorable biocompatibility, osteogenic induction potential, and ability to promote vascular regeneration. In an bone defect model, the GGA-ZSP hydrogel significantly enhanced the bone regeneration rates. This study demonstrated that the GGA-ZSP hydrogel has pretty environmentally friendly therapeutic effects in osteogenic differentiation and massive bone defect repair.

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Source
http://dx.doi.org/10.1021/acsbiomaterials.4c00143DOI Listing

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