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Published on: October 12, 2018
Mannosylated Polycations Target CD206+ Antigen-Presenting Cells and Mediate T-Cell-Specific Activation in Cancer
Federica Bellato1, Sara Feola2,3, Gloria Dalla Verde1
1Department of Pharmaceutical and Pharmacological Sciences, University of Padova, Via F. Marzolo 5, 35131Padova, Italy.
Abstract:
Immunotherapy is deemed one of the most powerful therapeutic approaches to treat cancer. However, limited response and tumor specificity are still major challenges to address. Herein, mannosylated polycations targeting mannose receptor- are developed as vectors for plasmid DNA (pDNA)-based vaccines to improve selective delivery of genetic material to antigen-presenting cells and enhance immune cell activation. Three diblock glycopolycations (M15A12, M29A25, and M58A45) and two triblock copolymers (M29A29B9 and M62A52B32) are generated by using mannose (M), agmatine (A), and butyl (B) derivatives to target CD206, complex nucleic acids, and favor the endosomal escape, respectively. All glycopolycations efficiently complex pDNA at N/P ratios <5, protecting the pDNA from degradation in a physiological milieu. M58A45 and M62A52B32 complexed with plasmid encoding for antigenic ovalbumin (pOVA) trigger the immune activation of cultured dendritic cells, which present the SIINFEKL antigenic peptide via specific major histocompatibility complex-I. Importantly, administration of M58A45/pOVA elicits SIINFEKL-specific T-cell response in C56BL/6 mice bearing the melanoma tumor model B16-OVA, well in line with a reduction in tumor growth. These results qualify mannosylation as an efficient strategy to target immune cells in cancer vaccination and emphasize the potential of these glycopolycations as effective delivery vehicles for nucleic acids.
Insights
Mannosylated polycations effectively deliver plasmid DNA (pDNA) vaccines to antigen-presenting cells, enhancing immune activation. This strategy shows promise for cancer immunotherapy by improving tumor specificity and reducing tumor growth.
Area of Science:
- Biotechnology
- Immunology
- Materials Science
Background:
- Cancer immunotherapy faces challenges with limited response and tumor specificity.
- Targeting antigen-presenting cells (APCs) is crucial for effective vaccine delivery.
- Mannose receptor (CD206) is a potential target on APCs for enhanced cellular uptake.
Purpose of the Study:
- To develop mannosylated polycations as vectors for plasmid DNA (pDNA)-based cancer vaccines.
- To improve selective delivery of genetic material to APCs.
- To enhance immune cell activation and anti-tumor responses.
Main Methods:
- Synthesis of diblock and triblock glycopolycations using mannose (M), agmatine (A), and butyl (B) derivatives.
- Complexation of pDNA with glycopolycations at low N/P ratios (<5).
- In vitro assessment of dendritic cell activation and antigen presentation (SIINFEKL peptide via MHC-I).
- In vivo evaluation of T-cell response and tumor growth reduction in a B16-OVA melanoma model.
Main Results:
- Glycopolycations efficiently complexed pDNA, protecting it from degradation.
- Specific glycopolycations (M58A45, M62A52B32) activated dendritic cells and promoted SIINFEKL peptide presentation.
- Administration of M58A45/pOVA induced SIINFEKL-specific T-cell responses in mice.
- Significant reduction in tumor growth was observed in the B16-OVA melanoma model.
Conclusions:
- Mannosylation is an effective strategy for targeting immune cells in cancer vaccination.
- Developed glycopolycations show potential as efficient delivery vehicles for nucleic acid-based therapies.
- This approach enhances anti-tumor immunity and warrants further investigation for cancer treatment.
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