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Manufacture and Drug Delivery Applications of Silk Nanoparticles
Published on: October 8, 2016
Design of High-Specificity Nanocarriers by Exploiting Non-Equilibrium Effects in Cancer Cell Targeting
Konstantinos Tsekouras1, Igor Goncharenko, Michael E Colvin
1Department of Physics, University of California Merced, Merced, California, United States of America.
Plos One
|July 11, 2013
Summary
Maximizing nanocarrier affinity for cancer cell receptors is suboptimal. Exploiting system kinetics with low-affinity ligands and reduced endocytosis significantly enhances nanocarrier specificity for cancer drug delivery.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Cancer Therapeutics
Background:
- Targeting cancer cells with drug-delivering nanocarriers aims to improve therapeutic specificity.
- Current strategies often focus on maximizing ligand affinity for overexpressed cancer cell receptors, which proves suboptimal.
Purpose of the Study:
- To determine design principles that maximize nanocarrier specificity for cancer cells.
- To investigate the role of system kinetics in nanocarrier-receptor interactions.
Main Methods:
- A generalized kinetics-based theoretical model was developed.
- The model studied nanocarriers with one or more ligands binding to overexpressed cancer cell receptors.
Main Results:
- System kinetics play a crucial role in determining nanocarrier specificity.
- Orders of magnitude improvement in specificity can be achieved by exploiting these kinetics.
- Specificity increases were observed with low rates of endocytosis and nanocarriers featuring multiple low-affinity ligands.
Conclusions:
- A paradigm shift is needed in receptor-targeted drug-delivery design.
- Optimal nanocarrier design involves low endocytosis rates and multiple low-affinity ligands.
- These findings are robust across various endocytosis mechanisms and drug-delivery protocols.
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