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Biology subjects

Mehta, N. U.

Publications and source records attributed to Mehta, N. U..

2 recordsLinked to original sources

Enhancer hubs govern chromatin topology and Th17 identity

Between one and two million noncoding regulatory elements have been described across mammalian genomes, but determining their functional role remains a challenge. To address this gap, we measure the regulatory potential of open chromatin regions (OCRs) in five closely related mouse CD4+ T cell subsets with ATAC-STARR-seq, then map endogenous enhancer function and three-dimensional contacts in Th17 cells with pooled CRISPR-based noncoding screens and high-resolution Micro-C. Of all CD4+ T cell OCRs, approximately 25% demonstrate largely subset-shared regulatory activity, though we identify subset-restricted active elements distinguishable by their sequence features. In Th17 cells, we reveal a set of core regulatory OCRs essential for subset polarization at the Batf, Rorc(t) and Il17a/f loci, and confirm their requirement for cell identity in vivo. At these three loci, we resolve nested yet selective enhancer-to-enhancer and enhancer-to-promoter physical interactions that converge into multi-enhancer hubs. Importantly, these hubs contain many of the strongest functional elements. Perturbation of a single enhancer within the Batf locus selectively disrupts hub contacts and Batf expression in Th17 cells, recapitulating the genome-wide transcriptional and chromatin accessibility signatures of a germline knockout. Together, this work assigns regulatory activity to accessible chromatin across CD4+ T cell subsets and couples the function of a set of essential elements to selective three-dimensional contacts in Th17 cells.

genomics↗

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↗