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Anticancer Efficacy of Photodynamic Therapy with Lung Cancer-Targeted Nanoparticles
Published on: December 1, 2016
Natural Particulates Inspired Specific-Targeted Codelivery of siRNA and Paclitaxel for Collaborative Antitumor
Ruoning Wang1, Ziqiang Zhao1, Yue Han1
1State Key Laboratory of Natural Medicines, Department of Pharmaceutics, China Pharmaceutical University , 24 Tongjiaxiang, Nanjing 210009, China.
Abstract:
The effective combination of drugs promoting antiangiogenesis and apoptosis effects has proven to be a promising collaborative tumor antidote; and the codelivery of small interfering RNA (siRNA) and chemotherapy agents within one efficient vehicle has gained more attention over single regimen administration. Herein, vascular endothelial growth factor specific siRNA (siVEGF) and paclitaxel (PTX) were introduced as therapeutic companions and coencapsulated into naturally mimic high-density lipoproteins (rHDL/siVEGF-PTX), so that various mechanisms of treatment can occur simultaneously. The terminal nanoparticles share capacity of specific-targeting to tumor cells overexpressed scavenger receptor class B type I (SR-BI) and deliver siVEGF and PTX into cytoplasm by a nonendocytosis mechanism. By exchanging HDL core lipids with hydrophobic therapeutics, rHDL/siVEGF-PTX possessed particle size of ∼160 nm, surface potential of ∼-20 mV, and desirable long-term storage stability. In vitro results confirmed that the parallel activity of siVEGF and PTX displayed enhanced anticancer efficacy. The half-maximal inhibitory concentration (IC50) of rHDL/siVEGF-PTX toward human breast cancer MCF-7 cell is 0.26 μg/mL (PTX concentration), which presents a 14.96-fold increase in cytotoxicity by taking Taxol as comparison. Moreover, in vivo results further demonstrated that rHDL/siVEGF-PTX performed enhanced tumor growth inhibition via natural targeting pathway, accompanied by remarkable inhibition of neovascularization in situ caused by siVEGF silencing in down-regulation of VEGF proteins. On the premise of effective drug codelivery, rHDL/siVEGF-PTX demonstrated high tumor targeting for collaborative antitumor efficacy without side effects after systemic administration, and this bioinspired strategy could open an avenue for exploration of combined anticancer therapy.
Insights
This study introduces a novel nanoparticle system for combined cancer therapy. The system co-delivers vascular endothelial growth factor specific siRNA (siVEGF) and paclitaxel (PTX) to effectively inhibit tumor growth and neovascularization.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Oncology
Background:
- Combined therapeutic strategies offer enhanced antitumor efficacy compared to single-agent treatments.
- Co-delivery of small interfering RNA (siRNA) and chemotherapy agents in a single vehicle is an emerging approach for cancer therapy.
- Naturally mimicking high-density lipoproteins (rHDL) provide a stable and effective platform for drug delivery.
Purpose of the Study:
- To develop and evaluate a novel nanoparticle system for the co-delivery of siVEGF and paclitaxel (PTX).
- To investigate the synergistic anticancer effects of combined antiangiogenesis and apoptosis-inducing agents.
- To assess the targeting capabilities and in vivo efficacy of the developed rHDL-based nanocarrier.
Main Methods:
- siVEGF and PTX were co-encapsulated into rHDL to form rHDL/siVEGF-PTX nanoparticles.
- Nanoparticle characterization included size, surface potential, and storage stability assessment.
- In vitro cytotoxicity assays using MCF-7 breast cancer cells and in vivo tumor growth inhibition studies were performed.
Main Results:
- rHDL/siVEGF-PTX nanoparticles exhibited a size of ~160 nm and a surface potential of ~-20 mV with good stability.
- In vitro studies showed a 14.96-fold increase in cytotoxicity compared to Taxol alone.
- In vivo studies demonstrated significant tumor growth inhibition, reduced neovascularization, and effective targeting via scavenger receptor class B type I (SR-BI).
Conclusions:
- The developed rHDL/siVEGF-PTX system enables effective co-delivery of therapeutic agents for synergistic anticancer effects.
- This bioinspired nanomedicine strategy shows high tumor targeting and collaborative antitumor efficacy with minimal side effects.
- This approach holds promise for advancing combined anticancer therapies.
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