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Biology subjects

Moulin, D.

Publications and source records attributed to Moulin, D..

2 recordsLinked to original sources

IL-12 restores the sequential cytotoxic capacities of anti-GD2 CAR-T and CAR-iNKT cells against glioblastoma

Glioblastoma (GBM) is a highly aggressive brain tumor characterized by rapid progression and a poor prognosis. CAR-based cellular therapies are promising approaches, and CAR-T cells targeting GD2 have demonstrated transient efficacy. Identifying how tumors evade these treatments is essential for advancing therapy development. In this study, we investigated the mechanisms through which GBM cells evade GD2.chimeric antigen receptor (CAR)-T and CAR-invariant natural killer T (iNKT) in vitro and explored ways to overcome tumor escape. GD2-targeted CAR-T and CAR-iNKT cells were tested in a stepwise in vitro model that repeatedly exposed them to GD2+ cell lines. While CAR effector cells effectively killed GD2+ GBM cells in short-term assays, their anti-tumor efficacy declined after repeated antigen exposures. Tumor escape mechanisms included reduced CAR expression, impaired proliferation, reduced production of cytokine, granzyme, and perforin, tumor downregulation of GD2, trogocytosis, and upregulation of the HLA-E/NKG2A inhibitory compared to MICA-B/NKG2D activation pathways on tumor and immune cells. Increasing effector cell numbers or adding IL-15 +/- IL-7 partially improved CAR persistence but did not fully restore CAR effector functions. By contrast, IL-12 addition optimized tumor-killing capacity by increasing CAR effector cell proliferation, CAR surface expression, IFN-y production, and balancing HLA-E/NKG2A versus MICA-B/NKG2D pathways. In conclusion, GD2.CAR-T and GD2.CAR-iNKT cells effectively target GBM but are susceptible to repeated antigen exposure, which IL-12 could counteract. These findings encourage further development of armored IL-12 CAR-T or CAR-iNKT cells and further investigation of the roles of HLA-E and MICA-B pathways in immunotherapy against GBM.

immunology↗

Molecular and spatial profiling identifies immune endotypes for the stratification of OA patients

Osteoarthritis (OA) is a prevalent and heterogeneous joint disease in which synovial inflammation drives structural progression and pain. Despite the recognized heterogeneity of OA, the cellular and molecular organization of synovial tissue remains poorly characterized and defining distinct histological and immune endotypes could guide precision medicine and therapeutic targeting. We show that histologically defined synovial pathotypes are conserved across independent cohorts and correspond to distinct molecular immune endotypes. Integration of bulk and spatial transcriptomics with proteomics revealed niche-specific gene and protein signatures, reflecting the anatomical and functional diversity of OA synovium. The lympho-myeloid pathotype was characterized by mature ectopic lymphoid structures containing CD21+CD23+ follicular dendritic cells, spatially organized T and B cell zones, and clonally expanded T and B cells with shared immune cell receptor motifs, consistent with local adaptive immune activity correlating with radiological joint damage. These findings highlight how immune organization and cellular composition shape OA pathogenesis and provide a framework for endotype-guided stratification and therapeutic targeting.

immunology↗