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Published on: October 30, 2013
Multifunctional targeting micelle nanocarriers with both imaging and therapeutic potential for bladder cancer
Tzu-Yin Lin1, Hongyong Zhang, Juntao Luo
1Division of Hematology and Oncology, Department of Internal Medicine, University of California- Davis, Sacramento, CA 95817, USA.
Background:
We previously developed a bladder cancer-specific ligand (PLZ4) that can specifically bind to both human and dog bladder cancer cells in vitro and in vivo. We have also developed a micelle nanocarrier drug-delivery system. Here, we assessed whether the targeting micelles decorated with PLZ4 on the surface could specifically target dog bladder cancer cells.
Materials And Methods:
Micelle-building monomers (ie, telodendrimers) were synthesized through conjugation of polyethylene glycol with a cholic acid cluster at one end and PLZ4 at the other, which then self-assembled in an aqueous solution to form micelles. Dog bladder cancer cell lines were used for in vitro and in vivo drug delivery studies.
Results:
Compared to nontargeting micelles, targeting PLZ4 micelles (23.2 ± 8.1 nm in diameter) loaded with the imaging agent DiD and the chemotherapeutic drug paclitaxel or daunorubicin were more efficient in targeted drug delivery and more effective in cell killing in vitro. PLZ4 facilitated the uptake of micelles together with the cargo load into the target cells. We also developed an orthotopic invasive dog bladder cancer xenograft model in mice. In vivo studies with this model showed the targeting micelles were more efficient in targeted drug delivery than the free dye (14.3×; P < 0.01) and nontargeting micelles (1.5×; P < 0.05).
Conclusion:
Targeting micelles decorated with PLZ4 can selectively target dog bladder cancer cells and potentially be developed as imaging and therapeutic agents in a clinical setting. Preclinical studies of targeting micelles can be performed in dogs with spontaneous bladder cancer before proceeding with studies using human patients.
Insights
Targeting micelles with PLZ4 ligand specifically deliver drugs to dog bladder cancer cells. These PLZ4 micelles show enhanced efficacy in preclinical models, paving the way for new cancer therapies.
Area of Science:
- Nanotechnology
- Oncology
- Drug Delivery
Background:
- A bladder cancer-specific ligand (PLZ4) was previously developed.
- A micelle nanocarrier drug-delivery system was also established.
- This study investigates PLZ4-decorated micelles for targeting canine bladder cancer.
Purpose of the Study:
- To assess the targeting capability of PLZ4-decorated micelles for dog bladder cancer cells.
- To evaluate the in vitro and in vivo efficacy of these targeted micelles.
Main Methods:
- Synthesis of micelle-building monomers by conjugating polyethylene glycol with cholic acid and PLZ4.
- Self-assembly of monomers into micelles in aqueous solution.
- In vitro and in vivo drug delivery studies using dog bladder cancer cell lines and an orthotopic xenograft model.
Main Results:
- Targeting PLZ4 micelles demonstrated more efficient drug delivery and enhanced cell killing in vitro compared to non-targeting micelles.
- PLZ4 facilitated micelle and cargo uptake into target cells.
- In vivo studies showed targeting micelles were significantly more efficient in drug delivery in an orthotopic dog bladder cancer model.
Conclusions:
- PLZ4-decorated micelles selectively target dog bladder cancer cells.
- These micelles hold potential as clinical imaging and therapeutic agents.
- Preclinical studies in dogs with spontaneous bladder cancer are recommended before human trials.
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