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Published on: December 1, 2016
The ROMP: A Powerful Approach to Synthesize Novel pH-Sensitive Nanoparticles for Tumor Therapy
Philippe Bertrand1, Christophe Blanquart2, Valérie Héroguez3
1Institut de Chimie des Milieux et Matériaux de Poitiers, UMR CNRS 7285, 4 rue Michel Brunet, TSA 51106, B28, 86073 Poitiers CEDEX 09, France. philippe.bertrand@univ-poitiers.fr.
Abstract:
Fast clearance, metabolism, and systemic toxicity are major limits for the clinical use of anti-cancer drugs. Histone deacetylase inhibitors (HDACi) present these defects, despite displaying promising anti-tumor properties on tumor cells in vitro and in in vivo models of cancer. The specific delivery of anti-cancer drugs into the tumor should improve their clinical benefit by limiting systemic toxicity and by increasing the anti-tumor effect. This paper deals with the synthesis of the polymeric nanoparticle platform, which was produced by Ring-Opening Metathesis Polymerization (ROMP), able to release anti-cancer drugs in dispersion, such as histone deacetylase inhibitors, into mesothelioma tumors. The core-shell nanoparticles (NPs) have stealth properties due to their poly(ethylene oxide) shell and can be viewed as universal nano-carriers on which any alkyne-modified anti-cancer molecule can be grafted by click chemistry. A cleavage reaction of the chemical bond between NPs and drugs through the contact of NPs with a medium presenting an acidic pH, which is typically a cancer tumor environment or an acidic intracellular compartment, induces a controlled release of the bioactive molecule in its native form. In our in vivo syngeneic model of mesothelioma, a highly selective accumulation of the particles in the tumor was obtained. The release of the drugs led to an 80% reduction of tumor weight for the best compound without toxicity. Our work demonstrates that the use of theranostic nanovectors leads to an optimized delivery of epigenetic inhibitors in tumors, which improves their anti-tumor properties in vivo.
Insights
This study developed novel polymeric nanoparticles for targeted anti-cancer drug delivery. These nanoparticles effectively deliver histone deacetylase inhibitors to mesothelioma tumors, significantly reducing tumor weight without toxicity.
Area of Science:
- Nanotechnology
- Oncology
- Polymer Chemistry
Background:
- Anti-cancer drugs, like histone deacetylase inhibitors (HDACi), face limitations due to rapid clearance, metabolism, and systemic toxicity.
- Targeted drug delivery aims to enhance anti-cancer efficacy and minimize side effects by concentrating medication within tumors.
Purpose of the Study:
- To synthesize and evaluate a polymeric nanoparticle platform for the controlled release of HDACi into mesothelioma tumors.
- To assess the in vivo efficacy and toxicity of these nanoparticles in a preclinical cancer model.
Main Methods:
- Polymeric nanoparticles were synthesized using Ring-Opening Metathesis Polymerization (ROMP).
- Nanoparticles featured a poly(ethylene oxide) shell for stealth properties and utilized click chemistry for drug conjugation.
- Drug release was triggered by the acidic tumor microenvironment, inducing cleavage of the drug-NP bond.
Main Results:
- The nanoparticles demonstrated selective accumulation within mesothelioma tumors in vivo.
- Drug release resulted in an 80% reduction in tumor weight for the most effective compound.
- No significant systemic toxicity was observed with the nanoparticle-delivered treatment.
Conclusions:
- Theranostic nanovectors offer an optimized strategy for delivering epigenetic inhibitors to tumors.
- This approach significantly enhances in vivo anti-tumor properties while mitigating systemic toxicity.
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