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Biology subjects

Kasahara, N.

Publications and source records attributed to Kasahara, N..

2 recordsLinked to original sources

Replicating retroviral delivery of an IL-15 superagonist improves antitumor immunity and long-term survival in poorly immunogenic glioblastoma models

Glioblastoma (GBM) is the most lethal primary brain neoplasm due to its highly immunosuppressive microenvironment and resistance to conventional therapies. To overcome this challenge, we engineered a replicating retrovirus (RRV) to deliver a superagonist interleukin-15 receptor-linked fusion protein (RLI) directly to tumor cells, engineering them into local immunotherapy biofactories. This strategy leverages the tumor-selective replication of RRV to achieve localized and sustained RLI expression within the tumor microenvironment. In two orthotopic poorly immunogenic GBM mouse models, intratumoral administration of RRV RLI significantly reduced tumor growth and prolonged survival compared to controls, with some mice achieving long-term remission and demonstrating immunologic memory upon rechallenge. Transcriptomic and flow cytometric analyses revealed that RRV RLI treatment enhanced infiltration and activation of CD8 T cells, NK cells, and upregulated antigen presentation pathways within the tumor microenvironment. Depletion studies indicated that the therapeutic efficacy of RRV RLI is dependent on both CD4 and CD8 T cells. Notably, combining RRV RLI with the GBM standard of care chemotherapeutic agent temozolomide (TMZ) synergistically improved survival outcomes. Subsequent single-cell RNA and T cell receptor sequencing identified enhanced effector cell activation, antigen presentation, and clonal T cell expansion in the combination therapy group. Further T cell receptor analysis and clustering implied a tumor-specific immune response rather than one targeting the viral delivery vehicle, suggesting that this therapeutic approach could be reapplied without eliciting anti-vector immunity. Our findings suggest that RRV-mediated delivery of RLI effectively transforms GBM tumors into immunostimulatory hubs, eliciting a potent anti-tumor immune response. This novel viral immunotherapy holds significant promise for clinical translation in the treatment of GBM and other difficult-to-treat solid tumors.

cancer biology↗

IRF8-driven reprogramming of the immune microenvironment enhances anti-tumor adaptive immunity and reduces immunosuppression in murine glioblastoma

BackgroundGlioblastoma (GBM) has a highly immunosuppressive tumor immune microenvironment (TIME), largely mediated by myeloid-derived suppressor cells (MDSCs). Here, we utilized a retroviral replicating vector (RRV) to deliver Interferon Regulatory Factor 8 (IRF8), a master regulator of type 1 conventional dendritic cell (cDC1) development, in a syngeneic murine GBM model. We hypothesized that RRV-mediated delivery of IRF8 could "reprogram" intratumoral MDSCs into antigen-presenting cells (APCs) and thereby restore T-cell responses. MethodsEffects of RRV-IRF8 on survival and tumor growth kinetics were examined in the SB28 murine GBM model. Immunophenotype was analyzed by flow cytometry and gene expression assays. We assayed functional immunosuppression and antigen presentation by ex vivo T-cell-myeloid co-culture. ResultsMice with RRV-IRF8 pre-transduced intracerebral tumors had significantly longer survival and slower tumor growth compared to controls. RRV-IRF8 treated tumors exhibited significant enrichment of cDC1s and CD8+ T-cells. Additionally, myeloid cells derived from RRV-IRF8 tumors showed decreased expression of the immunosuppressive markers Arg1 and IDO1 and demonstrated reduced suppression of naive T-cell proliferation in ex vivo co-culture, compared to controls. Furthermore, DCs from RRV-IRF8 tumors showed increased antigen presentation compared to those from control tumors. In vivo treatment with azidothymidine (AZT), a viral replication inhibitor, showed that IRF8 transduction in both tumor and non-tumor cells is necessary for survival benefit, associated with a reprogrammed, cDC1- and CD8 T-cell-enriched TIME. ConclusionsOur results indicate that reprogramming of glioma-infiltrating myeloid cells by in vivo expression of IRF8 may reduce immunosuppression and enhance antigen presentation, achieving improved tumor control. Key pointsO_LIGBM intra-tumoral myeloid cells are proliferative and targets for RRV therapy. C_LIO_LIExpression of IRF8 significantly improves survival and slows tumor growth in murine GBM. C_LIO_LIIRF8 expression in MDSCs reduces immunosuppression and enriches cDC1s in vivo. C_LI Importance of the studyRecent publications have presented conflicting studies regarding the role of IRF8 in GBM. While some studies showed IRF8 as a negative prognostic factor, others demonstrated the conversion of tumor cells into DCs using IRF8. Here, we show that RRV-mediated delivery of IRF8, a clinically relevant modality, allows for transduction of both tumor and immune cells in vivo. We show that a significant survival effect relies heavily on the infection and modulation of both populations, and that even a modest number of reprogrammed intra-tumoral MDSCs can have a substantial impact on the immunological milieu, significantly enriching and activating cytotoxic T-cells. Further, this work reveals intra-tumoral myeloid cells as a target for other RRV-based gene therapies.

immunology↗