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Preparation, Optimization, and In-Vitro Evaluation of Brusatol- and Docetaxel-Loaded Nanoparticles for the Treatment
Tayo Alex Adekiya1, Madison Moore2, Michael Thomas2
1Department of Pharmaceutical Sciences, College of Pharmacy, Howard University, Washington, DC 20059, USA.
Abstract:
Challenges to docetaxel use in prostate cancer treatment include several resistance mechanisms as well as toxicity. To overcome these challenges and to improve the therapeutic efficacy in heterogeneous prostate cancer, the use of multiple agents that can destroy different subpopulations of the tumor is required. Brusatol, a multitarget inhibitor, has been shown to exhibit potent anticancer activity and play an important role in drug response and chemoresistance. Thus, the combination of brusatol and docetaxel in a nanoparticle platform for the treatment of prostate cancer is expected to produce synergistic effects. In this study, we reported the development of polymeric nanoparticles for the delivery of brusatol and docetaxel in the treatment of prostate cancer. The one-factor-at-a-time method was used to screen for formulation and process variables that impacted particle size. Subsequently, factors that had modifiable effects on particle size were evaluated using a 24 full factorial statistical experimental design followed by the optimization of drug loading. The optimization of blank nanoparticles gave a formulation with a mean size of 169.1 nm ± 4.8 nm, in agreement with the predicted size of 168.333 nm. Transmission electron microscopy showed smooth spherical nanoparticles. The drug release profile showed that the encapsulated drugs were released over 24 h. Combination index data showed a synergistic interaction between the drugs. Cell cycle analysis and the evaluation of caspase activity showed differences in PC-3 and LNCaP prostate cancer cell responses to the agents. Additionally, immunoblots showed differences in survivin expression in LNCaP cells after treatment with the different agents and formulations for 24 h and 72 h. Therefore, the nanoparticles are potentially suitable for the treatment of advanced prostate cancer.
Insights
This study developed polymeric nanoparticles to deliver brusatol and docetaxel, enhancing prostate cancer treatment. The combination demonstrated synergistic effects, offering a promising approach for advanced prostate cancer.
Area of Science:
- Nanomedicine
- Oncology
- Materials Science
Background:
- Docetaxel resistance and toxicity limit prostate cancer treatment efficacy.
- Brusatol, a multitarget inhibitor, shows anticancer potential and influences chemoresistance.
- Combining agents is crucial for heterogeneous tumors.
Purpose of the Study:
- To develop polymeric nanoparticles for co-delivery of brusatol and docetaxel in prostate cancer treatment.
- To optimize nanoparticle formulation for size and drug loading.
- To evaluate the synergistic effects and cellular mechanisms of the combined therapy.
Main Methods:
- Screening formulation variables using a one-factor-at-a-time method.
- Employing a 2^4 full factorial design for process optimization and drug loading.
- Characterizing nanoparticles (size, morphology) and assessing drug release kinetics.
- Evaluating synergistic interactions (Combination Index), cell cycle, caspase activity, and survivin expression.
Main Results:
- Optimized nanoparticles achieved a mean size of 169.1 nm ± 4.8 nm with spherical morphology.
- Encapsulated drugs exhibited sustained release over 24 hours.
- Demonstrated synergistic interaction between brusatol and docetaxel.
- Observed differential responses in prostate cancer cell lines (PC-3, LNCaP) regarding cell cycle, caspase activity, and survivin expression.
Conclusions:
- Developed polymeric nanoparticles are suitable for co-delivering brusatol and docetaxel.
- The combination therapy exhibits synergistic effects against prostate cancer cells.
- This nanoparticle-based approach holds potential for treating advanced prostate cancer.
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