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Tomaszewski, W. H.

Publications and source records attributed to Tomaszewski, W. H..

2 recordsLinked to original sources

Restriction of innate Tγδ17 cell plasticity by an AP-1 regulatory axis

IL-17-producing {gamma}{delta} T (T{gamma}{delta}17) cells are innate-like mediators of intestinal barrier immunity. While Th17 cell and ILC3 plasticity have been extensively studied, the mechanisms governing T{gamma}{delta}17 cell effector flexibility remain undefined. Here, we combined type 3 fate-mapping with single cell ATAC/RNA-seq multiome profiling to define the cellular features and regulatory networks underlying T{gamma}{delta}17 cell plasticity. During homeostasis, T{gamma}{delta}17 cell effector identity was stable across tissues, including for intestinal T-bet+ T{gamma}{delta}17 cells that restrained IFN{gamma} production. However, S. typhimurium infection induced intestinal V{gamma}6+ T{gamma}{delta}17 cell conversion into type 1 effectors, with loss of IL-17A production and partial ROR{gamma}t downregulation. Multiome analysis revealed a trajectory along V{gamma}6+ T{gamma}{delta}17 effector conversion, with TIM-3 marking ex-T{gamma}{delta}17 cells with enhanced type 1 functionality. Lastly, we characterized and validated a critical AP-1 regulatory axis centered around JunB and Fosl2 that controls V{gamma}6+ T{gamma}{delta}17 cell plasticity by stabilizing type 3 identity and restricting type 1 effector conversion.

immunology↗

Antigen presentation by tumor-associated macrophages mediates progenitor to terminal exhaustion transition in GBM and other solid tumors

Whereas terminally exhausted T (Tex_term) cells retain anti-tumor cytotoxic functions, the frequencies of stem-like progenitor exhausted T (Tex_prog) cells better reflect immunotherapeutic responsivity. Here, we examined the intratumoral cellular interactions that govern the transition to terminal T cell exhaustion. We defined a metric reflecting the intratumoral progenitor exhaustion-to-terminal exhaustion ratio (PETER), which decreased with tumor progression in solid cancers. Single cell analyses of Tex_prog cells and Tex_term cells in glioblastoma (GBM), a setting of severe T cell exhaustion, revealed disproportionate loss of Tex_prog cells over time. Exhaustion concentrated within tumor-specific T cell subsets, with cognate antigen exposure requisite for acquisition of the Tex_term phenotype. Tumor-associated macrophages (TAM) - not tumor cells - were the primary source of antigenic exposure governing the Tex_prog to Tex_term transition. TAM depletion increased frequencies of Tex_prog cells in multiple tumor models, increased PETER, and promoted responsiveness to PD-1 immunotherapy. Thus, targeting TAM - T cell interactions may further license checkpoint blockade responses.

immunology↗