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Auranofin-Loaded Chitosan Nanoparticles Demonstrate Potency against Triple-Negative Breast Cancer
Maame Abena O Afrifa1, Jong H Kim2, Kathryn A Pitton2
1Department of Biomedical Engineering, University of Kentucky, Lexington, Kentucky 40506, United States.
Abstract:
Triple-negative breast cancer (TNBC) remains a clinical challenge due to molecular, metabolic, and genetic heterogeneity as well as the lack of validated drug targets. Thus, therapies or delivery paradigms are needed. Gold-derived compounds including the FDA-approved drug, auranofin have shown promise as effective anticancer agents against several tumors. To improve the solubility and bioavailability of auranofin, we hypothesized that the nanodelivery of auranofin using biodegradable chitosan modified polyethylene glycol (PEG) nanoparticles (NPs) will enhance anticancer activity against TNBC by comparing the best nanoformulation with the free drug. The selection of the nanoformulation was based on synthesis of various chitosan PEG copolymers via formaldehyde-mediated engraftment of PEG onto chitosan to form [chitosan-g-PEG] copolymer. Furthermore, altered physiochemical properties of the copolymer was based on the formaldehyde ratio towards nanoparticles (CP 1-4 NPs). Following the recruitment of PEG onto the chitosan polymer surface, we explored how this process influenced the stiffness of the nanoparticle using atomic force microscopy (AFM), a factor crucial for in vitro and in vivo studies. Our objective was to ensure the full functionality and inherent properties of chitosan as the parent polymer was maintained without allowing PEG to overshadow chitosan's unique cationic properties while improving solubility in neutral pH. Hence, CP 2 NP was chosen. To demonstrate the efficacy of CP 2 NP as a good delivery carrier for auranofin, we administered a dose of 3 mg/kg of auranofin, in contrast to free auranofin, which was given at 5 mg/kg. In vivo studies revealed the potency of encapsulated auranofin against TNBC cells with a severe necrotic effect following treatment superior to that of free auranofin. In conclusion, chitosan-g-PEG nanoparticles have the potential to be an excellent delivery system for auranofin, increasing its effectiveness and potentially reducing its clinical limitations.
Insights
Chitosan-grafted polyethylene glycol (PEG) nanoparticles effectively deliver auranofin, enhancing its anticancer activity against triple-negative breast cancer (TNBC). This nanoformulation shows superior efficacy compared to free auranofin, offering a promising therapeutic strategy.
Area of Science:
- Biomaterials Science
- Nanotechnology
- Oncology
Background:
- Triple-negative breast cancer (TNBC) presents a significant clinical challenge due to its heterogeneity and lack of targeted therapies.
- Auranofin, a gold-derived compound, demonstrates anticancer potential but faces limitations in solubility and bioavailability.
- Novel drug delivery systems are crucial for improving the efficacy of existing anticancer agents against TNBC.
Purpose of the Study:
- To develop and evaluate biodegradable chitosan-polyethylene glycol (PEG) nanoparticles (NPs) for enhanced delivery of auranofin.
- To compare the anticancer efficacy of auranofin-loaded nanoparticles against free auranofin in TNBC models.
- To optimize nanoparticle formulation for improved solubility and therapeutic effect.
Main Methods:
- Synthesis of chitosan-g-PEG copolymers using formaldehyde-mediated engraftment.
- Characterization of nanoparticle physicochemical properties, including stiffness using atomic force microscopy (AFM).
- In vivo evaluation of auranofin-loaded CP 2 NPs against TNBC, comparing efficacy with free auranofin at different dosages.
Main Results:
- Chitosan-g-PEG nanoparticles (CP 2 NP) were successfully synthesized, maintaining chitosan's cationic properties while improving solubility.
- Encapsulated auranofin in CP 2 NPs demonstrated superior potency against TNBC cells in vivo, inducing significant necrosis.
- The optimal auranofin dose was lower when delivered via nanoparticles (3 mg/kg) compared to the free drug (5 mg/kg).
Conclusions:
- Chitosan-g-PEG nanoparticles serve as an effective delivery system for auranofin in TNBC treatment.
- Nanodelivery enhances auranofin's anticancer activity and bioavailability, potentially overcoming clinical limitations.
- This approach offers a promising strategy for improving therapeutic outcomes in triple-negative breast cancer.

