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Overcoming drug resistance with a docetaxel and disulfiram loaded pH-sensitive nanoparticle
K Laxmi Swetha1, Milan Paul2, Kavya Sree Maravajjala1
1Department of Pharmacy, Birla Institute of Technology & Science, Pilani, Vidya Vihar, Pilani, Rajasthan 333031, India.
Abstract:
Previous studies have demonstrated that breast cancer cells deploy a myriad array of strategies to thwart the activity of anticancer drugs like docetaxel (DTX), including acquired drug resistance due to overexpression of drug-efflux pumps like P-glycoprotein (P-gp) and innate drug resistance by cancer stem cells (CSCs). As disulfiram (DSF) can inhibit both P-gp and CSCs, we hypothesized that co-treatment of DTX and DSF could sensitize the drug-resistant breast cancer cells. To deliver a fixed dose ratio of DTX and DSF targeted to the tumor, a tumor extracellular pH-responsive nanoparticle (NP) was developed using a histidine-conjugated star-shaped PLGA with TPGS surface decoration ([DD]NpH-T). By releasing the encapsulated drugs in the tumor microenvironment, pH-sensitive NPs can overcome the tumor stroma-based resistance against nanomedicines. In in-vitro studies, [DD]NpH-T exhibited increased drug release at pH 6.8, improved penetration in a 3D tumor spheroid, reduced serum protein adsorption, and enhanced cytotoxic efficacy against both innate and acquired DTX-resistant breast cancer cells. In in-vivo studies, a significant increase in plasma AUC and tumor drug delivery was observed with [DD]NpH-T, which resulted in an enhanced in-vivo anti-tumor efficacy against a mouse orthotopic breast cancer, with a significantly increased intratumoral ROS and apoptosis, while decreasing P-gp expression and prevention of lung metastasis. Altogether, the current study demonstrated that the DTX and DSF combination could effectively target multiple drug-resistance pathways in-vitro, and the in-vivo delivery of this drug combination using TPGS-decorated pH-sensitive NPs could increase tumor accumulation, resulting in improved anti-tumor efficacy.
Insights
Combining docetaxel (DTX) and disulfiram (DSF) in pH-sensitive nanoparticles overcomes breast cancer drug resistance. This targeted delivery enhances anti-tumor efficacy and reduces metastasis by addressing P-glycoprotein (P-gp) and cancer stem cells (CSCs).
Area of Science:
- Biomedical Engineering
- Nanomedicine
- Cancer Therapy
Background:
- Breast cancer cells develop resistance to drugs like docetaxel (DTX) via P-glycoprotein (P-gp) and cancer stem cells (CSCs).
- Disulfiram (DSF) can inhibit both P-gp and CSCs, suggesting a potential synergistic effect with DTX.
Purpose of the Study:
- To develop a pH-responsive nanoparticle ([DD]NpH-T) for co-delivering DTX and DSF at a fixed ratio to tumors.
- To investigate the efficacy of this combination therapy in overcoming both innate and acquired drug resistance in breast cancer.
Main Methods:
- A histidine-conjugated star-shaped PLGA nanoparticle decorated with TPGS ([DD]NpH-T) was synthesized for pH-triggered drug release.
- In vitro studies assessed drug release, spheroid penetration, cytotoxicity against resistant cells, and serum protein adsorption.
- In vivo studies evaluated pharmacokinetic profiles, tumor drug delivery, anti-tumor efficacy, apoptosis, P-gp expression, and metastasis in a mouse model.
Main Results:
- The [DD]NpH-T nanoparticles showed enhanced drug release at tumor-relevant pH (6.8) and improved penetration in 3D tumor spheroids.
- In vitro, the combination therapy significantly enhanced cytotoxicity against DTX-resistant breast cancer cells.
- In vivo, [DD]NpH-T increased drug accumulation in tumors, boosted anti-tumor efficacy, induced apoptosis, reduced P-gp expression, and prevented lung metastasis.
Conclusions:
- The DTX and DSF combination effectively targets multiple drug resistance mechanisms in breast cancer.
- TPGS-decorated, pH-sensitive nanoparticles provide a promising strategy for enhanced tumor accumulation and improved therapeutic outcomes in drug-resistant breast cancer.
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