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May 28, 2026Macromol—A Journal of Macromolecular Research0 citationsOpen Access

Photopolymerized Gelatin–PNIPAM as Injectable Hydrogel Drug Delivery Systems

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OLO N LunevaESEugene SivtsovIBIrina Bagriy

Key Points

  • The aim is to synthesize and characterize thermosensitive hydrogels and microgels for effective drug delivery.
  • Developed thermosensitive microgels via photoinitiated copolymerization of gelatin and NIPAM.
  • Investigated effects of monomer concentration, crosslinker content, and irradiation time on properties.
  • Evaluated swelling capacity, release profiles, and biocompatibility using human skin fibroblasts.
  • Microgel diameters decreased from 354–1022 nm at 20 °C to 183–308 nm at 40 °C.
  • Drug release reached 38–88% over 6 days, demonstrating temperature sensitivity.
  • Biocompatibility assessed with >85% cell viability of human skin fibroblasts.

Abstract

Injectable hydrogels have attracted substantial and rapidly growing interest due to their ability to be administered into cavities of any shape and provide local therapeutic treatment. This study reports the synthesis and characterization of thermosensitive microgels and hydrogels obtained via photoinitiated copolymerization of methacrylated gelatin (GN-MA) and N-isopropylacrylamide (NIPAM) in the absence and presence of N,N′-methylenebisacrylamide (MBA). The effects of monomer concentration, crosslinker content (MBA), and irradiation time on product yield, grafted chain length, and material properties were systematically investigated. Depending on the polymerization conditions, microgel samples exhibited hydrodynamic diameters in the range of 354–1022 nm at 20 °C, which decreased to 183–308 nm upon heating to 40 °C. Freeze-drying of the microgel dispersions resulted in the formation of a porous sponge-like structure with pore sizes of 50–90 µm. Rheological studies of the hydrogel properties demonstrated evident thermoresponsive behavior, with storage moduli (G′) ranging from 20 to 600 Pa, matching the mechanics of certain soft tissues. The hydrogels showed high equilibrium swelling capacity at 20 °C, which was reduced at 40 °C, as well as temperature-dependent moxifloxacin release (38–88% over 6 days) and excellent biocompatibility (>85% cell viability) with human skin fibroblasts. These findings make them promising for biomedical applications such as postoperative cavity filling and local drug delivery.

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Cite This Study

Luneva et al. (2026) studied this question.

synapsesocial.com/papers/6a17dd4e3fad632b0f9da127https://doi.org/10.3390/macromol6020034
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