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Updated: May 29, 2026

Therapeutic Gene Delivery and Transfection in Human Pancreatic Cancer Cells using Epidermal Growth Factor Receptor-targeted Gelatin Nanoparticles
Published on: January 4, 2012
EGFR-targeted stearoyl gemcitabine nanoparticles show enhanced anti-tumor activity
Michael A Sandoval1, Brian R Sloat, Dharmika S P Lansakara-P
1Pharmaceutics Division, The University of Texas at Austin, College of Pharmacy, Austin, Texas 78712, USA.
Abstract:
Previously, it was shown that a novel 4-(N)-stearoyl gemcitabine nanoparticle formulation was more effective than gemcitabine hydrochloride in controlling the growth of model mouse or human tumors pre-established in mice. In the present study, the feasibility of targeting the stearoyl gemcitabine nanoparticles (GemC18-NPs) into tumor cells that over-express epidermal growth factor receptor (EGFR) to more effectively control tumor growth was evaluated. EGFR is over-expressed in a variety of tumor cells, and EGF is a known natural ligand of EGFR. Recombinant murine EGF was conjugated onto the GemC18-NPs. The ability of the EGF to target the GemC18-NPs to human breast adenocarcinoma cells that expressed different levels of EGFR was evaluated in vitro and in vivo. In culture, the extent to which the EGF-conjugated GemC18-NPs were taken up by tumor cells was correlated to the EGFR density on the tumor cells, whereas the uptake of untargeted GemC18-NPs exhibited no difference among those same cell lines. The relative cytotoxicity of the EGF-conjugated GemC18-NPs to tumor cells in culture was correlated to EGFR expression as well. In vivo, EGFR-over-expressing MDA-MB-468 tumors in mice treated with the EGF-conjugated GemC18-NPs grew significantly slower than in mice treated with untargeted GemC18-NPs, likely due to that the EGF-GemC18-NPs were more anti-proliferative, anti-angiogenic, and pro-apoptotic. Fluorescence intensity data from ex vivo imaging showed that the EGF on the nanoparticles helped increase the accumulation of the GemC18-NPs into MDA-MB-468 tumors pre-established in mice by more than 2-fold as compared to the un-targeted GemC18-NPs. In conclusion, active targeting of the GemC18-NPs into EGFR-over-expressed tumors can further enhance their anti-tumor activity.
Insights
Targeting stearoyl gemcitabine nanoparticles (GemC18-NPs) with epidermal growth factor (EGF) enhanced tumor cell uptake and anti-tumor activity in EGFR-over-expressing cancers. This EGF-conjugated nanoparticle approach shows promise for more effective cancer treatment.
Area of Science:
- Nanomedicine
- Cancer Biology
- Drug Delivery
Background:
- Novel 4-(N)-stearoyl gemcitabine nanoparticle (GemC18-NP) formulation demonstrated superior tumor growth control compared to gemcitabine hydrochloride.
- Epidermal growth factor receptor (EGFR) is over-expressed in various cancer types, making it a potential therapeutic target.
Purpose of the Study:
- To evaluate the feasibility of targeting GemC18-NPs to EGFR-over-expressing tumor cells using epidermal growth factor (EGF) conjugation.
- To assess the enhanced anti-tumor efficacy of EGF-targeted GemC18-NPs in vitro and in vivo.
Main Methods:
- Recombinant murine EGF was conjugated onto GemC18-NPs.
- In vitro studies assessed nanoparticle uptake and cytotoxicity in tumor cells with varying EGFR expression levels.
- In vivo studies evaluated tumor growth, nanoparticle accumulation, and anti-tumor mechanisms in EGFR-over-expressing xenograft models.
Main Results:
- EGF-conjugated GemC18-NPs showed EGFR density-dependent uptake and cytotoxicity in vitro.
- In vivo, EGF-targeted GemC18-NPs significantly inhibited tumor growth in EGFR-over-expressing xenografts.
- Targeted nanoparticles exhibited increased anti-proliferative, anti-angiogenic, and pro-apoptotic effects, with over a 2-fold increase in tumor accumulation.
Conclusions:
- Active targeting of GemC18-NPs to EGFR-over-expressing tumors enhances anti-tumor activity.
- EGF conjugation serves as an effective strategy for directing nanoparticles to specific tumor cells.
- This targeted nanomedicine approach holds potential for improved cancer therapy.
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