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Preparation and Characterization of Individual and Multi-drug Loaded Physically Entrapped Polymeric Micelles
Published on: August 28, 2015
Modulation of intracellular ceramide using polymeric nanoparticles to overcome multidrug resistance in cancer
Lilian E van Vlerken1, Zhenfeng Duan, Michael V Seiden
1Department of Pharmaceutical Sciences, School of Pharmacy, Northeastern University, Boston, Massachusetts, USA.
Abstract:
Although multidrug resistance (MDR) is known to develop through a variety of molecular mechanisms within the tumor cell, many tend to converge toward the alteration of apoptotic signaling. The enzyme glucosylceramide synthase (GCS), responsible for bioactivation of the proapoptotic mediator ceramide to a nonfunctional moiety glucosylceramide, is overexpressed in many MDR tumor types and has been implicated in cell survival in the presence of chemotherapy. The purpose of this study was to investigate the therapeutic strategy of coadministering ceramide with paclitaxel, a commonly used chemotherapeutic agent, in an attempt to restore apoptotic signaling and overcome MDR in the human ovarian cancer cell line SKOV3. Poly(ethylene oxide)-modified poly(epsilon-caprolactone) (PEO-PCL) nanoparticles were used to encapsulate and deliver the therapeutic agents for enhanced efficacy. Results show that indeed the cotherapy eradicates the complete population of MDR cancer cells when they are treated at their IC(50) dose of paclitaxel. More interestingly, when the cotherapy was combined with the properties of nanoparticle drug delivery, the MDR cells can be resensitized to a dose of paclitaxel near the IC(50) of non-MDR (drug sensitive) cells, indicating a 100-fold increase in chemosensitization via this approach. Molecular analysis of activity verified the hypothesis that the efficacy of this therapeutic approach is indeed due to a restoration in apoptotic signaling, although the beneficial properties of PEO-PCL nanoparticle delivery seemed to enhance the therapeutic success even further, showing the promising potential for the clinical use of this therapeutic strategy to overcome MDR.
Insights
This study shows that combining ceramide with paclitaxel, delivered via nanoparticles, can overcome multidrug resistance (MDR) in ovarian cancer. This approach restores apoptotic signaling, making resistant cells sensitive to chemotherapy.
Area of Science:
- Oncology
- Nanotechnology
- Biochemistry
Background:
- Multidrug resistance (MDR) in tumors often involves altered apoptotic signaling.
- Glucosylceramide synthase (GCS) overexpression promotes cancer cell survival by inactivating ceramide, a proapoptotic mediator.
- Restoring ceramide levels is a potential strategy to overcome MDR.
Purpose of the Study:
- To investigate the coadministration of ceramide and paclitaxel to restore apoptosis and overcome MDR in SKOV3 ovarian cancer cells.
- To evaluate the efficacy of PEO-PCL nanoparticles for delivering these agents.
Main Methods:
- Human ovarian cancer cell line SKOV3 (MDR) was used.
- Cells were treated with ceramide and paclitaxel, both alone and coadministered.
- Poly(ethylene oxide)-modified poly(epsilon-caprolactone) (PEO-PCL) nanoparticles were used for drug delivery.
- Cell viability and apoptotic signaling were analyzed.
Main Results:
- Ceramide and paclitaxel co-therapy eradicated MDR cancer cells at paclitaxel's IC(50) dose.
- Nanoparticle-delivered co-therapy resensitized MDR cells to paclitaxel doses near the IC(50) of drug-sensitive cells (100-fold increase in chemosensitization).
- Efficacy was attributed to restored apoptotic signaling, enhanced by nanoparticle delivery.
Conclusions:
- Coadministration of ceramide and paclitaxel, especially via PEO-PCL nanoparticles, is a promising strategy to overcome MDR in ovarian cancer.
- This approach restores apoptotic signaling, resensitizing resistant cells to chemotherapy.
- The findings support the potential clinical application of this nanoparticle-based cotherapy for MDR tumors.
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