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Antitumor activity of an epithelial cell adhesion molecule targeted nanovesicular drug delivery system
Sajid Hussain1, Andreas Plückthun, Theresa M Allen
1Department of Biochemistry, University of Zürich, Zürich, Switzerland.
Abstract:
Site-specific delivery of anticancer agents to tumors represents a promising therapeutic strategy because it increases efficacy and reduces toxicity to normal tissues compared with untargeted drugs. Sterically stabilized immunoliposomes (SIL), guided by antibodies that specifically bind to well internalizing antigens on the tumor cell surface, are effective nanoscale delivery systems capable of accumulating large quantities of anticancer agents at the tumor site. The epithelial cell adhesion molecule (EpCAM) holds major promise as a target for antibody-based cancer therapy due to its abundant expression in many solid tumors and its limited distribution in normal tissues. We generated EpCAM-directed immunoliposomes by covalently coupling the humanized single-chain Fv antibody fragment 4D5MOCB to the surface of sterically stabilized liposomes loaded with the anticancer agent doxorubicin. In vitro, the doxorubicin-loaded immunoliposomes (SIL-Dox) showed efficient cell binding and internalization and were significantly more cytotoxic against EpCAM-positive tumor cells than nontargeted liposomes (SL-Dox). In athymic mice bearing established human tumor xenografts, pharmacokinetic and biodistribution analysis of SIL-Dox revealed long circulation times in the blood with a half-life of 11 h and effective time-dependent tumor localization, resulting in up to 15% injected dose per gram tissue. These favorable pharmacokinetic properties translated into potent antitumor activity, which resulted in significant growth inhibition (compared with control mice), and was more pronounced than that of doxorubicin alone and nontargeted SL-Dox at low, nontoxic doses. Our data show the promise of EpCAM-directed nanovesicular drug delivery for targeted therapy of solid tumors.
Insights
Sterically stabilized immunoliposomes (SIL) targeting EpCAM-positive tumors with doxorubicin showed enhanced efficacy and reduced toxicity. This EpCAM-directed nanovesicular drug delivery holds promise for targeted solid tumor therapy.
Area of Science:
- Nanotechnology
- Oncology
- Pharmacology
Background:
- Targeted drug delivery aims to increase anticancer efficacy while minimizing systemic toxicity.
- Sterically stabilized immunoliposomes (SIL) are effective nanoscale systems for site-specific drug accumulation.
- The epithelial cell adhesion molecule (EpCAM) is a promising target due to its high expression in many solid tumors.
Purpose of the Study:
- To develop and evaluate EpCAM-directed immunoliposomes loaded with doxorubicin for targeted cancer therapy.
- To assess the in vitro and in vivo efficacy of these targeted liposomes.
Main Methods:
- EpCAM-directed immunoliposomes (SIL-Dox) were created by coupling a humanized antibody fragment (4D5MOCB) to doxorubicin-loaded liposomes.
- In vitro cytotoxicity assays were performed on EpCAM-positive tumor cells.
- Pharmacokinetic, biodistribution, and antitumor activity were evaluated in mice with human tumor xenografts.
Main Results:
- SIL-Dox demonstrated efficient binding and internalization by EpCAM-positive tumor cells in vitro.
- In vivo studies showed long circulation times (11h half-life) and significant tumor localization (up to 15% injected dose/g).
- SIL-Dox significantly inhibited tumor growth at low doses, outperforming free doxorubicin and non-targeted liposomes.
Conclusions:
- EpCAM-directed immunoliposomes (SIL-Dox) represent a promising nanovesicular drug delivery system for targeted cancer therapy.
- This approach enhances drug accumulation at the tumor site and improves therapeutic outcomes.
- Targeted delivery of doxorubicin via EpCAM-directed SIL offers a strategy to increase efficacy and reduce toxicity in solid tumors.
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