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Published on: September 28, 2022
Toward Personalized Peptide-Based Cancer Nanovaccines: A Facile and Versatile Synthetic Approach
Hamilton Kakwere1, Elizabeth S Ingham1, Riley Allen1
1Department of Biomedical Engineering, University of California , Davis, California 95616, United States.
Abstract:
Personalized cancer vaccines (PCVs) are receiving attention as an avenue for cancer immunotherapy. PCVs employ immunogenic peptide epitopes capable of stimulating the immune system to destroy cancer cells with great specificity. Challenges associated with effective delivery of these peptides include poor solubility of hydrophobic sequences, rapid clearance, and poor immunogenicity, among others. The incorporation of peptides into nanoparticles has the potential to overcome these challenges, but the broad range of functionalities found in amino acids presents a challenge to conjugation due to possible interferences and lack of reaction specificity. Herein, a facile and versatile approach to generating nanosized PCVs under mild nonstringent conditions is reported. Following a simple two-step semibatch synthetic approach, amphiphilic hyperbranched polymer-peptide conjugates were prepared by the conjugation of melanoma antigen peptides, either TRP2 (hydrophobic) or MUT30 (hydrophilic), to an alkyne functionalized core via strain-promoted azide-alkyne click chemistry. Self-assembly of the amphiphiles gave spherical nanovaccines (by transmission electron microscopy) with sizes in the range of 10-30 nm (by dynamic light scattering). Fluorescently labeled nanovaccines were prepared to investigate the cellular uptake by antigen presenting cells (dendritic cells), and uptake was confirmed by flow cytometry and microscopy. The TRP2 nanovaccine was taken up the most followed by MUT30 nanoparticles and, finally, nanoparticles without peptide. The nanovaccines showed good biocompatibility against B16-F10 cells, yet the TRP2 peptide showed signs of toxicity, possibly due to its hydrophobicity. A test for immunogenicity revealed that the nanovaccines were poorly immunogenic, implying the need for an adjuvant when administered in vivo. Treatment of mice with melanoma tumors showed that in combination with adjuvant, CpG, groups with the peptide nanovaccines slowed tumor growth and improved survival (up to 24 days, TRP2) compared to the untreated group (14 days).
Insights
Personalized cancer vaccines (PCVs) were developed using nanoparticles to improve peptide delivery. These nanovaccines showed potential in slowing melanoma tumor growth when combined with an adjuvant.
Area of Science:
- Biotechnology
- Immunology
- Materials Science
Background:
- Personalized cancer vaccines (PCVs) are a promising cancer immunotherapy approach.
- Challenges in PCV delivery include poor peptide solubility, rapid clearance, and low immunogenicity.
- Conjugating peptides to nanoparticles can overcome delivery hurdles, but amino acid functionalities complicate reactions.
Purpose of the Study:
- To develop a facile and versatile method for creating nanosized PCVs.
- To overcome challenges in peptide delivery for enhanced cancer immunotherapy.
- To evaluate the efficacy of peptide-loaded nanovaccines in a melanoma tumor model.
Main Methods:
- A two-step semibatch synthesis was used to create amphiphilic hyperbranched polymer-peptide conjugates.
- Strain-promoted azide-alkyne click chemistry conjugated melanoma antigen peptides (TRP2, MUT30) to an alkyne-functionalized core.
- Nanoparticle characterization, cellular uptake studies (dendritic cells), biocompatibility assays, and in vivo tumor treatment in mice were performed.
Main Results:
- Spherical nanovaccines (10-30 nm) were successfully formed via self-assembly.
- TRP2 nanovaccines exhibited higher cellular uptake by dendritic cells compared to MUT30 or peptide-free nanoparticles.
- Nanovaccines demonstrated good biocompatibility, but required an adjuvant (CpG) to significantly slow melanoma tumor growth and improve survival in mice.
Conclusions:
- A novel method for generating peptide-based nanovaccines was established using click chemistry.
- Nanoparticle formulation improved cellular uptake and demonstrated therapeutic potential against melanoma when combined with an adjuvant.
- Further optimization is needed to enhance the immunogenicity and therapeutic efficacy of PCVs.
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