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Therapeutic Gene Delivery and Transfection in Human Pancreatic Cancer Cells using Epidermal Growth Factor Receptor-targeted Gelatin Nanoparticles
Published on: January 4, 2012
Apoptotic epidermal growth factor (EGF)-conjugated block copolymer micelles as a nanotechnology platform for targeted
Helen Lee1, Meiduo Hu, Raymond M Reilly
1Department of Pharmaceutical Sciences, Leslie Dan Faculty of Pharmacy, Division of Nuclear Medicine, University Health Network, University of Toronto, 144 College Street, Toronto, Ontario, Canada.
Abstract:
The overexpression of epidermal growth factor receptor (EGFR) in human epithelial cancers has been associated with aggressive disease, poor patient prognosis, and a high incidence of metastases. In the present study, block copolymer micelles are conjugated with epidermal growth factor (EGF), which acts as both a targeting ligand for the drug carrier and an apoptotic factor against EGFR-overexpressing cancers. Drug-free EGF-conjugated micelles are shown to result in cell-cycle arrest at the G 1 phase and subsequent induction of cell-type-specific apoptosis in EGFR-overexpressing breast cancer cells as demonstrated by flow cytometric analysis. EGF delivered as EGF-conjugated micelles was found to be 13-fold more potent than free EGF; the IC 50 was decreased from 0.98 +/- 0.1 nM for free EGF to 0.076 +/- 0.01 nM for EGF micelles. The apoptotic micelles, however, are non-antiproliferative to cells expressing a low level of EGFR, suggesting that the apoptotic micelles have minimal or no toxicity against normal healthy tissues. Ellipticine, a chemotherapeutic agent, was loaded into the EGF-micelles after it had been shown, using the combination index-isobologram equation, to act synergistically with EGF. A 10-fold increase in EGF content in the ellipticine-loaded micelles lowered the IC 50 of ellipticine in EGFR-overexpressing breast cancer cells by more than 18-fold. The EGF-micelles have the potential to be further pursued as a versatile nanotechnology platform for targeted delivery of a wide range of chemotherapeutic agents as a combination therapy for the treatment of EGFR-overexpressing cancers.
Insights
Epidermal growth factor receptor (EGFR) targeted micelles loaded with ellipticine show enhanced apoptosis in EGFR-overexpressing breast cancer cells. This novel drug delivery system offers a promising platform for combination cancer therapy with reduced toxicity to healthy tissues.
Area of Science:
- Biotechnology
- Nanotechnology
- Oncology
Background:
- Epidermal growth factor receptor (EGFR) overexpression is linked to aggressive human epithelial cancers, poor prognosis, and metastasis.
- Targeted drug delivery systems are crucial for improving cancer treatment efficacy and reducing side effects.
Purpose of the Study:
- To develop EGF-conjugated micelles as a targeted apoptotic agent for EGFR-overexpressing cancers.
- To investigate the synergistic effect of EGF micelles and ellipticine for enhanced cancer therapy.
Main Methods:
- Block copolymer micelles were conjugated with epidermal growth factor (EGF).
- Flow cytometry was used to analyze cell-cycle arrest and apoptosis in cancer cells.
- The combination index-isobologram equation assessed drug synergy.
Main Results:
- EGF-conjugated micelles induced G1 cell-cycle arrest and apoptosis specifically in EGFR-overexpressing breast cancer cells.
- EGF micelles were 13-fold more potent than free EGF, with a significantly lower IC50.
- Ellipticine-loaded EGF micelles demonstrated an 18-fold reduction in ellipticine's IC50, indicating synergistic effects.
Conclusions:
- EGF-micelles are a potent, cell-type-specific apoptotic agent with minimal toxicity to normal tissues.
- EGF-micelles serve as a versatile nanotechnology platform for targeted delivery of chemotherapeutics.
- This approach holds potential for combination therapy in treating EGFR-overexpressing cancers.
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