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Boisgerault, N.

Publications and source records attributed to Boisgerault, N..

2 recordsLinked to original sources

A modified oncolytic measles virus exhibits strong immunotherapeutic potential through RIG-I activation by defective viral genomes

Oncolytic viruses can destroy tumors directly or by activating antitumor immunity, but balancing safety with potent immune stimulation remains challenging. Here, we show that deletion of the measles virus C protein, a key viral antagonist of innate immunity, reprograms the live-attenuated vaccine strain into a RIG-I-driven cancer immunotherapy. The resulting virus, MVdeltaC, accumulates defective viral genomes that activate RIG-I/MAVS signaling and trigger robust type I interferon and pro-inflammatory cytokine responses. MVdeltaC kills tumor cells more rapidly and efficiently than the parental virus and induces hallmarks of immunogenic cell death, including HMGB1 release and dendritic cell maturation. Intratumoral administration in immunocompetent mice bearing syngeneic neuroblastoma induced complete tumor regression in 90% of animals and established long-term antitumor memory. Antitumor responses were dependent on CD8 T and NK cells and were further enhanced by anti-CTLA-4 therapy or CD4 T-cell depletion. Prior measles immunization accelerated tumor clearance, indicating vaccine-boosted responses. MVdeltaC also controlled the growth of human mesothelioma, melanoma, and triple-negative breast cancer xenografts and patient-derived tumors in immunodeficient models. These findings establish MVdeltaC as a clinically ready, broad-spectrum immunotherapeutic that links RIG-I activation through defective viral genome generation to elicit potent and durable antitumor immunity. IMPACT StatementA modified measles virus lacking a viral innate immunity antagonist triggers potent antitumor responses via RIG-I sensing of defective viral genomes, revealing a new strategy for cancer immunotherapy.

immunology↗

In vitro models to mimic tumor endothelial cell-mediated immune cell reprogramming in lung adenocarcinoma

Tumor endothelial (TECs) cells play a critical role in regulating immune responses within the tumor microenvironment (TME). However, the mechanisms by which TECs modulate immune cell population remain unclear, particularly in non-small cell lung cancer (NSCLC). Here, we investigated how NSCLC cells tweak normal endothelial cells (NECs) into TECs and the subsequent effects on immune regulation. NECs were cocultured with various NSCLC cell lines, using 2D and 3D coculture models to evaluate TEC-mediated effects on immune cells. We show that direct coculture led to significant transcriptomic, proteomic and kinomic alterations in TECs, especially in pro-inflammatory pathways. We identified a downregulation of the co-stimulatory molecule OX40L in TECs compared to NECs, suggesting impaired T-cell proliferation support. While TECs showed a limited effect on CD8+ T-cell activation, TECs supported CD4 T-cells polarization into Treg and Th22 subsets. Moreover, TECs also promoted M2-like macrophages polarization, thereby potentially contributing to the TME immunosuppression. State-of-the-art single-cell RNA sequencing of 3D multicellular tumor spheroids (MCTS) revealed distinct TEC subpopulations, including an inflammatory subset with UPR signature. The latter was absent in 2D-cultured NECs but present in freshly isolated and 2D-cultured TECs from NSCLC patients. Importantly, we also identified within MCTS a perivascular M2-like macrophage subset, predicted to interact with TECs with MIF and Midkine signaling. In conclusion, TECs in NSCLC tumors play a pivotal role in remodeling the TME immune landscape by promoting immune suppression. This study highlights the complex immunoregulatory functions of TECs within our different in vitro models that mimic aspects of the TME. Our data may provide new insights into potential therapeutic strategies targeting TECs or regulatory signaling to improve the efficacy of immunotherapy in NSCLC.

cancer biology↗