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Updated: May 24, 2025

Polymalic Acid-based Nano Biopolymers for Targeting of Multiple Tumor Markers: An Opportunity for Personalized Medicine?
Published on: June 13, 2014
Polymeric PEG-based bioorthogonal triggers for prodrug activation in breast cancer
Madonna M A Mitry1,2, Helen M I Osborn1, Francesca Greco1
1Reading School of Pharmacy, University of Reading Whiteknights Reading RG6 6AD UK f.greco@reading.ac.uk h.m.i.osborn@reading.ac.uk.
Abstract:
Non-toxic prodrugs have proved of great value in medicinal chemistry programmes for cancer, due to their ability to selectively deliver toxic components at tumour sites once they are activated by a localised mechanism. Since activation of the prodrug to afford the toxic drug is a prerequisite for success of the approach, much interest has focused on the localised chemical and enzymatic mechanisms for activating the prodrugs. Bioorthogonal chemistry has positively impacted this area by providing biocompatible reactions that enable on-demand prodrug activation and active drug release. However, to be effective, it is essential that one of the components of the bioorthogonal reaction is localised at the tumour, in order to initiate the on-demand and on-target activation of the prodrug. Polymers such as poly(ethylene glycol) (PEG) are known to target solid tumours by passive targeting via the enhanced permeability and retention (EPR) effect. In this paper, the feasibility of derivatising long PEG chains to afford bioorthogonal activators (PEG-azide and PEG-tetrazine) for prodrug activation via the Staudinger ligation and the tetrazine ligation reactions, respectively, is evaluated. The molecular weight of the PEG in the activator and the type of linkage in the prodrug moiety were shown to significantly affect the rate of prodrug activation and hence the rate of drug release. In vitro cytotoxicity studies on breast cancer cells (MCF-7 and MDA-MB-231) showed ∼68-76% restoration of the parent drug's cytotoxicity for the Staudinger ligation-based prodrug activation strategy, and 100% restoration of the parent drug's cytotoxicity for the tetrazine ligation-based prodrug activation strategy. Restoration of doxorubicin's ability to intercalate with DNA upon activation of the prodrug by the PEG-activators was also demonstrated via fluorescence spectroscopy. Moreover, conjugation of the tetrazine bioorthogonal activator to a 10 kDa PEG polymer improved its serum stability in comparison with other reported tetrazine activators that completely lose their stability in serum over the same period of time. The feasibility of the combined passive targeting/bioorthogonal prodrug activation approach has therefore been demonstrated using a range of prodrugs, activation mechanisms, and in vitro assays.
Insights
This study demonstrates a novel prodrug activation strategy using bioorthogonal chemistry and poly(ethylene glycol) (PEG) polymers for targeted cancer therapy. The approach enhances drug delivery and restores cytotoxicity, showing promise for improved cancer treatment.
Area of Science:
- Medicinal Chemistry and Drug Delivery
- Bioorthogonal Chemistry
- Polymer Science
Background:
- Non-toxic prodrugs offer selective cancer therapy by releasing active drugs at tumor sites via localized activation mechanisms.
- Bioorthogonal chemistry enables on-demand prodrug activation, but requires a tumor-localized component for targeted initiation.
- Poly(ethylene glycol) (PEG) polymers can passively target solid tumors through the enhanced permeability and retention (EPR) effect.
Purpose of the Study:
- To evaluate the feasibility of derivatizing long PEG chains into bioorthogonal activators for prodrug activation.
- To investigate the impact of PEG molecular weight and prodrug linkage on activation and drug release rates.
- To assess the *in vitro* cytotoxicity and DNA intercalation restoration of activated prodrugs.
Main Methods:
- Synthesized PEG-azide and PEG-tetrazine as bioorthogonal activators for Staudinger ligation and tetrazine ligation, respectively.
- Evaluated prodrug activation rates based on PEG molecular weight and prodrug linkage.
- Performed *in vitro* cytotoxicity assays on MCF-7 and MDA-MB-231 breast cancer cells and fluorescence spectroscopy for DNA intercalation.
Main Results:
- Prodrug activation and drug release rates were significantly influenced by PEG molecular weight and prodrug linkage.
- Staudinger ligation strategy restored ~68-76% of parent drug cytotoxicity; tetrazine ligation strategy restored 100%.
- Restoration of doxorubicin's DNA intercalation ability was confirmed; 10 kDa PEG conjugation improved tetrazine activator serum stability.
Conclusions:
- Derivatized PEG chains serve as effective bioorthogonal activators for targeted prodrug activation via Staudinger and tetrazine ligations.
- The combined passive targeting (EPR effect) and bioorthogonal prodrug activation approach is feasible for enhanced cancer therapy.
- This strategy demonstrates significant potential for improving the efficacy and specificity of cancer drug delivery systems.
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