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Polymalic Acid-based Nano Biopolymers for Targeting of Multiple Tumor Markers: An Opportunity for Personalized Medicine?
Published on: June 13, 2014
Multivalent HER2-binding polymer conjugates facilitate rapid endocytosis and enhance intracellular drug delivery
D Christopher Radford1, Jiyuan Yang2, Mai C Doan1
1Department of Biomedical Engineering, University of Utah, Salt Lake City, UT 84112, USA.
Abstract:
Incorporating targeting moieties that recognize cancer-specific cellular markers can enhance specificity of anticancer nanomedicines. The HER2 receptor is overexpressed on numerous cancers, making it an attractive target. However, unlike many receptors that trigger endocytosis upon ligand binding, HER2 is an internalization-resistant receptor. As most chemotherapeutics act on intracellular targets, this presents a significant challenge for exploiting HER2 overexpression for improved tumor killing. However, hyper-crosslinking of HER2 has been shown to override the receptor's native behavior and trigger internalization. This research co-opts this crosslinking-mediated internalization for efficient intracellular delivery of an anticancer nanomedicine - specifically a HPMA copolymer-based drug delivery system. This polymeric carrier was conjugated with a small (7 kDa) HER2-binding affibody peptide to produce a panel of polymer-affibody conjugates with valences from 2 to 10 peptides per polymer chain. The effect of valence on surface binding and uptake was evaluated separately. All conjugates demonstrated similar (nanomolar) binding affinity towards HER2-positive ovarian carcinoma cells, but higher-valence conjugates induced more rapid endocytosis, with over 90% of the surface-bound conjugate internalized within 4 h. Furthermore, this enhancement was sensitive to crowding - high surface loading reduced conjugates' ability to crosslink receptors. Collectively, this evidence strongly supports a crosslinking-mediated endocytosis mechanism. Lead candidates from this panel achieved high intracellular delivery even at picomolar treatment concentrations; untargeted HPMA copolymers required 1000-fold higher treatment concentrations to achieve similar levels of intracellular accumulation. This increased intracellular delivery also translated to a more potent nanomedicine against HER2-positive cells; incorporation of the chemotherapeutic paclitaxel into this targeted carrier enhanced cytotoxicity over untargeted polymer-drug conjugate.
Insights
This study developed a novel nanomedicine targeting HER2-positive cancer cells. By using polymer-affibody conjugates, researchers achieved efficient intracellular drug delivery, enhancing cancer cell killing.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Oncology
Background:
- HER2 receptor overexpression in cancers presents a therapeutic target.
- HER2 is an internalization-resistant receptor, challenging intracellular drug delivery.
- Hyper-crosslinking HER2 can trigger its internalization, overcoming resistance.
Purpose of the Study:
- To develop and evaluate HER2-targeted nanomedicines for enhanced intracellular drug delivery.
- To investigate the effect of conjugate valence on HER2-mediated endocytosis.
- To assess the therapeutic efficacy of the targeted nanomedicine against HER2-positive cancer cells.
Main Methods:
- Conjugation of HER2-binding affibody peptides to HPMA copolymer nanocarriers at varying valences.
- Evaluation of conjugate binding affinity and uptake in HER2-positive ovarian carcinoma cells.
- Assessment of intracellular accumulation and cytotoxicity of targeted versus untargeted nanomedicines.
Main Results:
- All polymer-affibody conjugates showed nanomolar binding affinity for HER2-positive cells.
- Higher-valence conjugates (2-10 peptides/polymer) demonstrated rapid HER2-mediated endocytosis (>90% uptake within 4h).
- Targeted nanomedicines achieved high intracellular delivery at picomolar concentrations, significantly lower than untargeted carriers.
Conclusions:
- Conjugate valence critically influences the efficiency of HER2-mediated endocytosis.
- This crosslinking-mediated endocytosis mechanism enables potent intracellular drug delivery.
- Targeted nanomedicines demonstrate enhanced cytotoxicity against HER2-positive cancer cells, offering a promising therapeutic strategy.
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