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Pharmacological induction of MHC-I expression in tumor cells revitalizes T cell antitumor immunity
Qian Yu, Yu Dong, Xiaobo Wang, Chenxuan Su, Runkai Zhang, Wei Xu, Shuai Jiang, Yongjun Dang, Wei Jiang
Qian Yu, Yu Dong, Xiaobo Wang, Chenxuan Su, Runkai Zhang, Wei Xu, Shuai Jiang, Yongjun Dang, Wei Jiang
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Research Article Oncology

Pharmacological induction of MHC-I expression in tumor cells revitalizes T cell antitumor immunity

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Abstract

Antigen presentation by major histocompatibility complex class I (MHC-I) is crucial for T cell–mediated killing, and aberrant surface MHC-I expression is tightly associated with immune evasion. To address MHC-I downregulation, we conducted a high-throughput flow cytometry screen, identifying bleomycin (BLM) as a potent inducer of cell surface MHC-I expression. BLM-induced MHC-I augmentation rendered tumor cells more susceptible to T cells in coculture assays and enhanced antitumor responses in an adoptive cellular transfer mouse model. Mechanistically, BLM remodeled the tumor immune microenvironment, inducing MHC-I expression in a manner dependent on ataxia-telangiectasia mutated/ataxia telangiectasia and Rad3-related–NF-κB. Furthermore, BLM improved T cell–dependent immunotherapeutic approaches, including bispecific antibody therapy, immune checkpoint therapy, and autologous tumor-infiltrating lymphocyte therapy. Importantly, low-dose BLM treatment in mouse models amplified the antitumor effect of immunotherapy without detectable pulmonary toxicity. In summary, our findings repurpose BLM as a potential inducer of MHC-I, enhancing its expression to improve the efficacy of T cell–based immunotherapy.

Authors

Qian Yu, Yu Dong, Xiaobo Wang, Chenxuan Su, Runkai Zhang, Wei Xu, Shuai Jiang, Yongjun Dang, Wei Jiang

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Figure 1

BLM-mediated increasing of MHC-I expression primes CD8+ T cell activation.

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BLM-mediated increasing of MHC-I expression primes CD8+ T cell activatio...
(A) Cell surface HLA-A/B/C in SU-DHL-4 cells after incubation with the indicated concentrations of BLM for 48 hours. (B) Quantification of mean fluorescence intensities (MFIs) of HLA-A/B/C from A; n = 3 per group. (C) Cell surface HLA-A/B/C in SU-DHL-4 cells following incubation with 10 μM BLM for 12, 24, 48, and 72 hours. (D) Quantification of MFI of HLA-A/B/C from C; n = 3 per group. (E and F) Western blot analysis of the HLA-A expression in SU-DHL-4 cells after the indicated BLM concentrations (E) or BLM treatment times (F). (G) Quantitative real-time PCR (qRT-PCR) analysis of the antigen presentation gene expression in SU-DHL-4 cells after BLM treatment for 48 hours. (H) Coculture of murine cancer cells and OT-I T cells for T cell cytotoxicity assay. B16F10 or B16OVA cells were pretreated with indicated concentrations of BLM for 24 hours prior to coculture with OT-I T cells. The first lane displays the crystal violet staining images of remaining cancer cells (scale bars, 400 μm). The second lane presents the representative images of cancer cells’ apoptosis after coculture with OT-I T cells. PI, propidium iodide. (I) Quantification of the percentages of early and late apoptotic cells among cancer cells from H; n = 3 per group. (J) The concentration of IFN-γ in the coculture supernatant as detected by ELISA; n = 3 per group. Data indicate the mean ± SD. *P < 0.05, **P < 0.01, ***P < 0.001 compared with the vehicle group by 1-way ANOVA (B, D, I, and J) and unpaired t test (G).

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