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Published on: April 22, 2019
A potential role for immunotherapy in thyroid cancer by enhancing NY-ESO-1 cancer antigen expression
Viswanath Gunda1, Dennie T Frederick, Maria J Bernasconi
11 Massachusetts General Hospital , Harvard Medical School, Boston, Massachusetts.
Background:
NY-ESO-1 is one of the most immunogenic members of the cancer/testis antigen family and its levels can be increased after exposure to demethylating and deacetylating agents. This cytoplasmic antigen can serve as a potent target for cancer immunotherapy and yet has not been well studied in differentiated thyroid cancer cells.
Methods:
We studied the baseline expression of NY-ESO-1 messenger RNA and protein before and after exposure to 5-aza-2'-deoxycytidine (DAC) (72 hours) in a panel of thyroid cancer cell lines using quantitative polymerase chain reaction and Western blot. HLA-A2+, NY-ESO-1+ thyroid cell lines were then co-cultured with peripheral blood lymphocytes transduced with NY-ESO-1 specific T-cell receptor (TCR) and assayed for interferon-gamma and Granzyme-B release in the medium. SCID mice injected orthotopically with BCPAP cells were treated with DAC to evaluate for NY-ESO-1 gene expression in vivo.
Results:
None of the thyroid cancer cell lines showed baseline expression of NY-ESO-1. Three cell lines, BCPAP, TPC-1, and 8505c, showed an increase in NY-ESO-1 gene expression with DAC treatment and were found to be HLA-A2 positive. DAC-treated target BCPAP and TPC-1 tumor cells with up-regulated NY-ESO-1 levels were able to mount an appropriate interferon-gamma and Granzyme-B response upon co-culture with the NY-ESO-1-TCR-transduced peripheral blood lymphocytes. In vivo DAC treatment was able to increase NY-ESO-1 expression in an orthotopic mouse model with BCPAP cells.
Conclusion:
Our data suggest that many differentiated thyroid cancer cells can be pressed to express immune antigens, which can then be utilized in TCR-based immunotherapeutic interventions.
Insights
Differentiated thyroid cancer cells can be induced to express the NY-ESO-1 antigen using demethylating agents. This antigen expression enables a targeted immune response, paving the way for novel immunotherapies.
Area of Science:
- Oncology
- Immunology
- Molecular Biology
Background:
- NY-ESO-1 is a cancer/testis antigen highly immunogenic and a potential target for cancer immunotherapy.
- Its expression can be upregulated by demethylating and deacetylating agents.
- NY-ESO-1 expression in differentiated thyroid cancer (DTC) cells is not well-characterized.
Purpose of the Study:
- To investigate the potential for inducing NY-ESO-1 expression in DTC cells.
- To evaluate the immunogenicity of NY-ESO-1-expressing DTC cells in vitro and in vivo.
Main Methods:
- Assessed NY-ESO-1 mRNA and protein expression in DTC cell lines before and after treatment with 5-aza-2'-deoxycytidine (DAC).
- Utilized quantitative PCR and Western blot for expression analysis.
- Co-cultured HLA-A2+, NY-ESO-1+ DTC cells with NY-ESO-1-specific T-cell receptor (TCR) engineered T-cells.
- Measured interferon-gamma and Granzyme-B release.
- Evaluated in vivo NY-ESO-1 expression in an orthotopic mouse model.
Main Results:
- No baseline NY-ESO-1 expression was detected in any DTC cell lines.
- DAC treatment upregulated NY-ESO-1 gene expression in three HLA-A2+ DTC cell lines (BCPAP, TPC-1, 8505c).
- DAC-treated BCPAP and TPC-1 cells induced interferon-gamma and Granzyme-B release from NY-ESO-1-specific T-cells.
- In vivo DAC treatment increased NY-ESO-1 expression in an orthotopic BCPAP mouse model.
Conclusions:
- Differentiated thyroid cancer cells can be induced to express immune antigens like NY-ESO-1.
- This induced antigen expression can be leveraged for TCR-based immunotherapeutic strategies against thyroid cancer.
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