生物
人类白细胞抗原
免疫疗法
DNA甲基化
抗原呈递
免疫学
癌症研究
抗原处理
细胞毒性T细胞
表观遗传学
抗原
T细胞
免疫系统
遗传学
基因
基因表达
体外
作者
Chien‐Chung Chang,Giuseppe Pirozzi,Shao-Hsuan Wen,I‐Hsin Chung,Bau-Lin Chiu,Simona Errico,Monica Luongo,Maria Luisa Lombardi,Soldano Ferrone
标识
DOI:10.1074/jbc.m115.676130
摘要
Scant information is available about the molecular basis of multiple HLA class I antigen-processing machinery defects in malignant cells, although this information contributes to our understanding of the molecular immunoescape mechanisms utilized by tumor cells and may suggest strategies to counteract them. In the present study we reveal a combination of IFN-γ-irreversible structural and epigenetic defects in HLA class I antigen-processing machinery in a recurrent melanoma metastasis after immunotherapy. These defects include loss of tapasin and one HLA haplotype as well as selective silencing of HLA-A3 gene responsiveness to IFN-γ. Tapasin loss is caused by a germ-line frameshift mutation in exon 3 (TAPBP(684delA)) along with a somatic loss of the other gene copy. Selective silencing of HLA-A3 gene and its IFN-γ responsiveness is associated with promoter CpG methylation nearby site-α and TATA box, reversible after DNA methyltransferase 1 depletion. This treatment combined with tapasin reconstitution and IFN-γ stimulation restored the highest level of HLA class I expression and its ability to elicit cytotoxic T cell responses. These results represent a novel tumor immune evasion mechanism through impairing multiple components at various levels in the HLA class I antigen presentation pathway. These findings may suggest a rational design of combinatorial cancer immunotherapy harnessing DNA demethylation and IFN-γ response.
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