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Yamada, S. M.

Publications and source records attributed to Yamada, S. M..

2 recordsLinked to original sources

HIF-1α integrates metabolic and immunoregulatory programs in RORγt⁺ regulatory T cells during intestinal inflammation

Regulatory T (Treg) cells expressing ROR{gamma}t accumulate in the intestinal mucosa, yet the signals that determine whether they remain suppressive or acquire inflammatory features are incompletely defined. We first reanalyzed human ileal single-cell data and identified Crohns disease-enriched FOXP3 states in which RORC, HIF1A, hypoxia-responsive, inflammatory, and metabolic programs converged. We then deleted Hif1a in ROR{gamma}t-expressing cells and tested acute DSS colitis, T cell transfer colitis, and azoxymethane/DSS-induced colitis-associated colorectal cancer (CAC). {Delta}Hif1a mice were protected in all three settings. In lymphopenic recipients given the same pathogenic naive T cells, changing only the genotype of the cotransferred Treg population enhanced protection, linking the phenotype to regulatory-cell function in vivo. Reanalysis of mouse colonic Treg single-cell ATAC-seq nominated suppressive and mitochondrial programs for cell-intrinsic testing during low HIF1- expression. {Delta}Hif1a ROR{gamma}t Treg produced more IL-10 and less IL-17A and IFN-{gamma}, limited responder-cell proliferation, contained fewer dysfunctional and mitochondrial-reactive-oxygen-species-high mitochondria, favored fusion-associated transcription, and displayed greater basal and maximal oxygen consumption and reserve capacity. During CAC, HIF-1 loss blunted inflammatory ROR{gamma}t Treg accumulation and reduced tumor burden. Human trajectory and gene-regulatory-network analyses further predicted that HIF1A perturbation would oppose selected disease-associated branches. Together, these findings identify HIF-1 as a context-dependent checkpoint that connects hypoxia-responsive transcription to mitochondrial fitness and inflammatory plasticity in intestinal ROR{gamma}t Treg.

immunology↗

NLRP3 and NLRP1/CARD8 pathways differently contribute to pyroptosis of CD8+ T cells of ART-treated HIV patients

HIV-infected (HIV) patients exhibit immune dysregulation independently of antiretroviral therapy. The inflammasome, a cytosolic complex responsible for cleavage of the inflammatory cytokines IL -1{beta} and IL -18 and pyroptosis, is highly activated in peripheral blood mononuclear cells of HIV patients, suggesting its involvement in leukocyte dysfunction. While monocytes, B cells, and CD4+ T cells have been studied, little is known about CD8+ T lymphocytes. Therefore, we proposed to characterize the inflammasome activation in these cells, both the NLRP3 and NLRP1/CARD8 pathways, which are partially described in T cells. CD8+ T lymphocytes from non-HIV healthy donors (HD) and HIV patients were analyzed ex vivo and stimulated in vitro with known activators of NLRP3 (-CD3/-CD28), NLRP1 and CARD8 (DPP9 inhibitor ValboroPro, VbP) to assess inflammasome activation. HIV CD8+ T cells present a constitutively activated caspase-1 which positively correlates with the cell activation state. HIV CD8+ T cells were more activated and more resistant to VbP-induced pyroptosis than HD. On the other way, HIV CD8+ T lymphocytes showed higher pyroptosis in response to -CD3/-CD28. These findings suggest that the NLRP3 pathway is significantly dysregulated in those patients, and TCR stimulation may result in cell loss. At the same time, being HIV CD8+ T cells constitutively activated, other inflammasome pathways, such as NLRP1 or CARD8, present a delayed activation.

immunology↗