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Peptide:MHC Tetramer-based Enrichment of Epitope-specific T cells
Published on: October 22, 2012
Anti-tumor immunity provided by a synthetic multiple antigenic glycopeptide displaying a tri-Tn glycotope
R Lo-Man1, S Vichier-Guerre, S Bay
1Unité de Biologie des Régulations Immunitaires and Unité de Chimie Organique, Institut Pasteur, Paris, France. rloman@pasteur.fr
Abstract:
In many cancer cells the alteration of glycosylation processes leads to the expression of cryptic carbohydrate moieties, which make them good targets for immune intervention. Identification of cancer-associated glycotopes as well as progress in chemical synthesis have opened up the way for the development of fully synthetic immunogens that can induce anti-saccharide immune responses. Here, we synthesized a dendrimeric multiple antigenic glycopeptide (MAG) containing the Tn Ag O:-linked to a CD4(+) T cell epitope. This MAG is based on three consecutive Tn moieties (tri-Tn) corresponding to the glycotope recognized by an mAb (MLS 128) produced against the LS180 colon carcinoma cell line. The Abs induced by this MAG recognized murine and human tumor cell lines expressing the Tn Ag. Prophylactic vaccination using MAG provided protection of mice against tumor challenge. When used in active specific immunotherapy, the MAG carrying the tri-Tn glycotope was much more efficient than the mono-Tn analogue in promoting the survival of tumor-bearing mice. Furthermore, in active specific immunotherapy, a linear glycopeptide carrying two copies of the tri-Tn glycotope was shown to be poorly efficient compared with the dendrimeric MAG. Therefore, both the clustering of carbohydrate Ags and the way they are displayed seem to be important parameters for stimulating efficient anti-saccharide immune responses.
Insights
Synthetic cancer vaccines targeting Tn antigen show promise. A dendrimeric glycopeptide (MAG) induced strong anti-saccharide immune responses and protected mice from tumors, outperforming simpler analogues in immunotherapy.
Area of Science:
- Oncology
- Immunology
- Carbohydrate Chemistry
Background:
- Cancer cells exhibit altered glycosylation, exposing unique carbohydrate structures (glycotopes) for immune targeting.
- Advances in chemical synthesis enable the creation of synthetic immunogens for anti-saccharide responses.
Purpose of the Study:
- To develop and evaluate a dendrimeric multiple antigenic glycopeptide (MAG) for inducing anti-tumor immunity.
- To investigate the impact of carbohydrate antigen clustering and presentation on immune response efficacy.
Main Methods:
- Synthesis of a dendrimeric MAG incorporating Tn antigen (tri-Tn) linked to a CD4(+) T cell epitope.
- Induction of antibodies (Abs) and assessment of their reactivity against tumor cell lines.
- Evaluation of MAG in prophylactic vaccination and active specific immunotherapy models in mice.
Main Results:
- The synthesized MAG induced Abs that recognized Tn antigen-expressing murine and human tumor cell lines.
- Prophylactic vaccination with MAG conferred protection against tumor challenge in mice.
- Dendrimeric MAG with clustered tri-Tn epitopes was significantly more effective in immunotherapy than mono-Tn analogues or linear glycopeptides.
Conclusions:
- Dendrimeric presentation of clustered Tn antigens enhances anti-saccharide immune responses.
- Synthetic MAGs are effective immunogens for cancer immunotherapy, with structure influencing efficacy.
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