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pH-responsive nanocapsules loaded with 5-fluorouracil-coated green-synthesized CuO-ZnO NPs for enhanced anticancer
Gouranga Dutta1,2, Abimanyu Sugumaran3, Damodharan Narayanasamy4
1Department of Pharmaceutics, SRM College of Pharmacy, SRM Institute of Science and Technology, Kattankulathur, Tamil Nadu, 603203, India.
Abstract:
Cancer represents a form of unregulated cellular proliferation, persisting as a significant challenge to global health. Despite the progress made in therapeutic interventions, challenges such as inadequate drug selectivity, systemic toxicity, and the development of drug resistance continue to pose considerable obstacles. In response to these barriers, we prepared pH (Stimuli)-responsive gelatin (GA) nanocapsules (NCs) that encapsulate 5-fluorouracil (5-FU)-coated CuO-ZnO nanoparticles (NPs) to achieve a combined effect in anticancer activity. The CuO-ZnO nanoparticles have been chosen for their combined antitumor efficacy of CuO and ZnO NPs. CuO-ZnO NPs synthesized through an environmentally friendly approach utilizing Trichosanthes dioica fruit extract demonstrated a size of 35.79 ± 6.04 nm. The drug-coated NPs were encapsulated within a gelatin matrix, which was stabilized with poloxamer 188 (Po) through modified emulsion techniques. Various characterizations were conducted using FTIR, XRD, TEM, and XPS, yielding valuable insights into the structural integrity and morphology of CuO-ZnO NPs and NCs. The NCs' average size was found to be 331.4 ± 38.7 nm with an average zeta potential of -15.6 ± 4.98 mV. Studies found drug release is sensitive to acidic pH 5.6, with a more rapid release than pH 7.4 (~25% 48 h), increasing tumor delivery selectivity. The assessment of cytotoxicity (MTT assay) on HeLa cells revealed a markedly reduced IC50 (13.71 ± 2.6 µg/mL) for nanocapsules in comparison with CuO-ZnO NPs and 5-Fu, suggesting a combined interaction. The confirmation of the apoptosis feature was achieved via AO/EtBr staining. The results underscore the promise of PoGA-5Fu(CuO-ZnO) nanocapsules as a targeted approach to cancer therapy, demonstrating improved efficacy while minimizing systemic toxicity.
Insights
New pH-responsive gelatin nanocapsules loaded with 5-fluorouracil-coated CuO-ZnO nanoparticles show enhanced anticancer activity. This targeted drug delivery system improves efficacy and reduces systemic toxicity for cancer therapy.
Area of Science:
- Biomaterials Science
- Nanotechnology
- Cancer Therapeutics
Background:
- Cancer remains a major global health challenge due to issues like poor drug selectivity, toxicity, and resistance.
- Existing treatments face significant obstacles, necessitating novel approaches for improved therapeutic outcomes.
Purpose of the Study:
- To develop pH-responsive gelatin nanocapsules encapsulating 5-fluorouracil-coated CuO-ZnO nanoparticles for combined anticancer effects.
- To investigate the potential of this novel nanocarrier system for targeted cancer therapy with reduced systemic toxicity.
Main Methods:
- Synthesized CuO-ZnO nanoparticles using an eco-friendly method with Trichosanthes dioica fruit extract.
- Encapsulated 5-fluorouracil-coated nanoparticles within a gelatin matrix stabilized by poloxamer 188.
- Characterized the nanocapsules using FTIR, XRD, TEM, and XPS; assessed drug release kinetics and in vitro cytotoxicity (MTT assay) on HeLa cells.
Main Results:
- Characterization confirmed the structural integrity and morphology of CuO-ZnO nanoparticles and nanocapsules.
- Nanocapsules exhibited pH-sensitive drug release, with faster release at acidic pH 5.6 compared to pH 7.4, enhancing tumor selectivity.
- The nanocapsules demonstrated significantly lower IC50 values than individual components, indicating synergistic cytotoxicity and apoptosis induction.
Conclusions:
- Poloxamer-gelatin-5-fluorouracil-coated CuO-ZnO nanocapsules represent a promising targeted cancer therapy approach.
- The developed system shows potential for improved therapeutic efficacy and reduced systemic toxicity in cancer treatment.

