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Published on: June 23, 2020
Self-assembled peptide nanostructures targeting death receptor 5 and encapsulating paclitaxel as a multifunctional
Tyson J Moyer1,2, Feng Chen1,3, Daniel J Toft1,3
1Simpson Querrey Institute, Northwestern University, Chicago, Illinois 60611.
Abstract:
The development of tumor-targeted nanoscale carriers for the delivery of cancer therapeutics offers the ability to increase efficacy while limiting off-target toxicity. In this work we focused on targeting death receptor 5 (DR5), which is highly expressed by cancer cells, and upon binding, triggers programmed cell death. Hence, a nanostructure targeting DR5 would act as a dual targeting and therapeutic agent. We report here on a peptide amphiphile (PA) containing a dimeric, cyclic peptide that self-assembles into cylindrical supramolecular nanofibers and targets DR5. Coassembly of the DR5-targeting PA and a pegylated PA creates a supramolecular nanoscale construct with enhanced binding affinity to DR5 relative to a monomeric targeting PA, and was found to be cytotoxic in vitro. When combined with the chemotherapy paclitaxel, DR5-targeting carriers showed potent antitumor activity in vivo, demonstrating the multifunctional capabilities of peptide-based supramolecular nanostructures.
Insights
New peptide nanofibers target cancer
Area of Science:
- Biomaterials Science
- Nanotechnology
- Cancer Therapeutics
Background:
- Targeted drug delivery systems aim to enhance cancer therapeutic efficacy and reduce toxicity.
- Death receptor 5 (DR5) is highly expressed on cancer cells and can trigger programmed cell death.
- Developing nanostructures that target DR5 offers a dual targeting and therapeutic strategy.
Purpose of the Study:
- To create and evaluate peptide amphiphile (PA) nanofibers that self-assemble and target DR5 for cancer therapy.
- To investigate the enhanced binding affinity and cytotoxicity of coassembled DR5-targeting PAs.
- To assess the *in vivo* antitumor activity of DR5-targeting nanostructures combined with paclitaxel.
Main Methods:
- Synthesized peptide amphiphiles (PAs) with dimeric, cyclic peptides for DR5 targeting.
- Self-assembled PAs into cylindrical supramolecular nanofibers.
- Coassembled DR5-targeting PAs with pegylated PAs.
- Evaluated *in vitro* cytotoxicity and *in vivo* antitumor activity.
Main Results:
- The dimeric, cyclic peptide PA self-assembled into nanofibers targeting DR5.
- Coassembly with pegylated PA enhanced binding affinity to DR5 compared to monomeric PAs.
- The nanostructures exhibited *in vitro* cytotoxicity.
- *In vivo* studies showed potent antitumor activity when combined with paclitaxel.
Conclusions:
- Peptide-based supramolecular nanostructures can be engineered for dual targeting and therapeutic functions.
- DR5-targeting nanofibers demonstrate potential as effective cancer therapeutics.
- These nanostructures show promise for combination therapy with existing chemotherapeutics like paclitaxel.
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