Jul 2026· Colloids and Surfaces B: Biointerfaces· Vol 268 Pt 1, pp.
116021
· 0 citations· 41 references
Medicine
TL;DR
It is suggested that the hydrogel is a promising material for an injectable, localized drug-delivery platform in cancer therapy, offering a smart and adaptive treatment modality.
Abstract
In this study, a dual-responsive composite hydrogels were successfully developed using pH-sensitive chitosan (Cs) and the thermosensitive polymer Pluronic F-127 (PF-127) to explore its potential for drug delivery. The NaOH treatment was employed to modify the hydrogen-bonding interactions within Cs, enabling designed molecular organization prior to its incorporation into PF-127. This strategy effectively tuned the sol gel transition behaviour and viscosity of the system, resulting in an LCST (lower critical solution temperature) of approximately 37 °C ideal for biological applications. In cytotoxicity assays, the PF-127-Cs hydrogel exhibited potent cytotoxic effects at physiological pH (7.4), reducing cell viability, the DOX-loaded PF-127/Cs hydrogel showed significantly enhanced anticancer activity, reducing neuroblastoma cell viability to approximately 10% and 6% at 200 µg mL-1 after 48 and 72 h, respectively. In contrast, under acidic conditions (pH 5.5), cytotoxicity was markedly reduced, with cell viability remaining around 50% and 46%. This pH-dependent behavior demonstrates that the composite hydrogel not only integrates thermal and pH responsiveness but also provides stable performance and controlled drug-release characteristics. These findings suggest that the hydrogel is a promising material for an injectable, localized drug-delivery platform in cancer therapy, offering a smart and adaptive treatment modality.
Electro-responsive nanocomposite hydrogels based on gelatin, partially neutralized acrylic acid (PAAc), and acid-functionalized multiwalled carbon nanotubes (MWCNT-COOH) were developed and evaluated as potential smart drug delivery systems. The successful functionalization of pristine MWCNTs was confirmed by the shift...
P. Gogoi, Monalisha Boruah· International Journal of Lat...· 0 citations
Polymer-modified magnetite nanoparticles hold great promise for diverse biomedical applications, including drug delivery, magnetic hyperthermia, and tissue engineering. However, ensuring their long-term functionality and stability for in vivo applications remains a significant challenge. In this work, chitosan-modified...
V. S. Aiswarya Gowri, Karolinekersin Enoch, Anbumozhi Angayarkanni Somasundaram· International Journal of Bio...· 0 citations
Results show that this UV-crosslinkable and thermo-responsive gelatin methacrylate-poly(N-isopropylacrylamide-PNIPAM) (G/P) hybrid hydrogel is a mechanically robust, highly efficient platform for controlled cancer therapy.
Zahra Moazzami Goudarzi, Sohrab Asgaran, M. Osial et al.· ACS Applied Materials and In...· 0 citations
Self-fluorescent hydrogels of modified Chitosan (Ch) in chitosan@2-hydroxy-5-methylbenzaldehyde (ChP1), chitosan@2-hydroxy-5-methylisophthalaldehyde (ChP2) with variation of crosslinking modes were synthesized. The formation of CN for the gelation is indicated through reduction of peak intensity at 1578 cm-1 in Raman s...
Thermoresponsive biopolymer hydrogels offer a versatile platform for localized delivery of bioactive compounds; however, their performance is often limited by the competing requirements of network integrity, mechanical compliance, and stimulus-regulated release. Herein, thermosensitive chitosan/β-glycerophosphate/polyv...
N. H. Do, Mai Thi Phuong Nguyen, A. C. Ha· Soft Matter· 0 citations
Compared to PVA hydrogels, the composite hydrogels minimized the initial burst release and prolonged the stability of BSA over extended periods, thereby highlighting their potential applications in wound healing and tissue engineering.
Yan-Qi Li, Jin-Heng Liu, Guangxin Wang et al.· Polymer Engineering & Sc...· 0 citations
We use cookies to run the site and, with your consent, for analytics and to show ads.
See our Cookie Policy.