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Biology subjects

Yagel, G.

Publications and source records attributed to Yagel, G..

2 recordsLinked to original sources

Synovium-Restricted Armored PD-1-Targeted CAR-T Cells Reprogram Immunity and Resolve Experimental Arthritis

Despite major therapeutic advances, a substantial fraction of patients with autoimmune disease remains refractory to treatment. While B cell-targeted CAR-T therapies have shown considerable efficacy, the central contribution of pathogenic T cells to rheumatoid arthritis (RA) suggests that complementary T cell-directed strategies may enable deeper disease control. Using single-cell multi-omics of human RA and experimental models, PDCD1 was identified as a selective marker of synovial disease-associated T cells. We developed PD-1-directed CAR-T cells that potently eliminate these cells in vitro and in vivo, leading to marked attenuation of synovitis in RA models. To limit off-target activity, we engineered NR4A2-driven CAR-responsive biosensors to restrict CAR activity to inflamed synovium. To couple anti-PD-1 CAR-mediated cytotoxicity with microenvironmental modulation, we further engineered these CAR-T cells to secrete soluble TNF receptor II (sTNFRii), counteracting baseline inflammation and CAR-induced IFN response and promoting a tissue-reparative myeloid state. PD-1-targeted CAR-T therapy thus represents a promising, specific, and safe strategy for autoimmune diseases involving disease-associated T cells.

immunology↗

Cancer-associated fibroblasts serve as decoys to suppress NK cell anti-cancer cytotoxicity

Cancer associated fibroblasts (CAFs) are among the most abundant components of the breast tumor microenvironment (TME) and major contributors to immune modulation. CAFs are well-known to regulate the activity of diverse types of immune cells including T cells, macrophages and dendritic cells, however little is known about their interaction with Natural killer (NK) cells, which constitute an important arm of anti-tumor immunity. Here we find, using mouse models of cancer and ex-vivo co-cultures, that CAFs inhibit NK cell cytotoxicity towards cancer cells. We unravel the mechanism by which this suppression occurs, through ligand-receptor engagement between NK cells and CAFs leading to CAF cytolysis, which in turn diminishes the expression of activating receptors on NK cells, promoting cancer escape from NK cell surveillance. Analysis of breast cancer patient samples reveals enrichment of NK cells in CAF-rich regions, and upregulation of NK binding ligands on CAFs which is correlated with poor disease outcome. These results reveal a CAF-mediated immunosuppressive decoy mechanism with implications for treatment of solid tumors.

cancer biology↗