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Floess, S.

Publications and source records attributed to Floess, S..

4 recordsLinked to original sources

Profiling of DNA-methylation signatures in human ILCs during homeostasis and allergic disease

The transcriptional programs of human ILCs are increasingly defined, but the DNA-methylation landscapes that stabilize their identity and function remain poorly understood. Here, we generated genome-wide DNA methylomes of human NK cells, ILC1, ILC2, and ILC3 from blood and lymphoid tissues. Subset-specific differentially methylated regions distinguished all populations and mapped to canonical regulators, including TBX21, GATA3, and RORC, as well as genes not previously linked to ILC biology, such as ERN1, DDX47, JAML, BTLA, and NRROS. Because ILC2 showed a particularly distinct methylation landscape and contribute to allergic inflammation, we tested whether selected ILC2-specific regions were functionally relevant. ILC2 marker regions were largely stable across tissues and during cytokine-driven expansion. CRISPR/Cas9-mediated deletion of the HPGDS or NRROS DMR revealed that these elements act as cis-regulatory sites controlling HPGDS/NRROS expression and promoting production of the type 2 cytokines IL-4, IL-5 and IL-13. Finally, methylome profiling of ILC2 from healthy, atopic, and asthmatic children identified disease-associated DMRs linked to PTGS2, QKI, and GIMAP4. These findings define stable epigenetic signatures of human ILC identity and uncover regulatory elements connecting ILC2 methylation to allergic disease.

immunology↗

CREB determines the expression of ST2 in Tregs and mediates the balance between type 1 and type 2 immune responses

Regulatory T cells (Tregs) are gatekeepers of immune homeostasis and characterized by expression of Foxp3, which maintains Treg identity. Here we demonstrate that in mice with a Foxp3-specific knockout of CREB, enhanced numbers of Tregs are found in vivo in spleen, lung and colon. These Tregs display a reduced Foxp3 expression, but enhanced expression of the IL-33 receptor (ST-2), IL-10, IL-13, and CREM. CREB deficient Tregs were highly suppressive in vitro and prevented disease activity in CD4 T cell mediated transfer colitis in an IL-10 dependent way. Mechanistically CREB fulfils dual roles in Tregs. First it downregulates Foxp3 expression, however in cooperation with CREM, CREB expression in Tregs alters chromatin accessibility to the ST-2 region and thereby influences T cell specific immune responses mediated by IL-10. Brief summary: Mice with a Foxp3-specific knockout of CREB display enhanced expression of IL-13, IL-10, ST-2 and CREM, which prevents gut inflammation GRAPHICAL ABSTRACT O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=140 SRC="FIGDIR/small/601312v2_ufig1.gif" ALT="Figure 1"> View larger version (22K): org.highwire.dtl.DTLVardef@a2d341org.highwire.dtl.DTLVardef@1db6852org.highwire.dtl.DTLVardef@19e024borg.highwire.dtl.DTLVardef@a8c84d_HPS_FORMAT_FIGEXP M_FIG C_FIG Created by Biorender

immunology↗

DNA methylation profiling identifies TBKBP1 as potent amplifier of cytotoxic activity in CMV-specific human CD8+ T cells

Epigenetic mechanisms stabilize gene expression patterns during CD8+ T cell differentiation. However, although adoptive transfer of virus-specific T cells is clinically applied to reduce the risk of virus infection or reactivation in immunocompromised individuals, the DNA methylation pattern of virus-specific CD8+ T cells is largely unknown. Hence, we here performed whole-genome bisulfite sequencing of cytomegalovirus-specific human CD8+ T cells and found that they display a unique DNA methylation pattern consisting of 79 differentially methylated regions when compared to bulk memory CD8+ T cells. Among them was TBKBP1, coding for TBK-binding protein 1 that can interact with TANK-binding kinase 1 (TBK1) and mediate pro-inflammatory responses in innate immune cells downstream of intracellular virus sensing. Since TBKBP1 has not yet been reported in T cells, we aimed to unravel its role in virus-specific CD8+ T cells. TBKBP1 demethylation in terminal effector CD8+ T cells correlated with TBKBP1 expression and was stable upon long-term in vitro culture. TBKBP1 overexpression resulted in enhanced TBK1 phosphorylation upon stimulation of CD8+ T cells and significantly improved their virus neutralization capacity. Collectively, our data demonstrate that TBKBP1 modulates virus-specific CD8+ T cell responses and could be exploited as therapeutic target to improve adoptive T cell therapies.

immunology↗

Postnatal lymph node expansion of stromal progenitors towards reticular and CD34+ stromal cell subsets is determined by distinct transcriptional programs

Gut-draining mesenteric lymph nodes (mLN) provide the framework and microenvironment to shape intestinal adaptive immune responses. We previously delineated transcriptional signatures in LN stromal cells (SC), pointing to tissue-specific variability in composition and immuno-modulatory function of SCs. Here, we dissect the tissue-specific epigenomic DNA accessibility and CpG methylation landscape of LN non-endothelial SCs and identify a microbiota-independent core epigenomic signature of LN SCs. By combined analysis of transcription factor (TF) binding sites together with the gene expression profiles of non-endothelial SCs, we delineated TFs poising skin-draining peripheral LN (pLN) SCs for pro-inflammatory responses. Furthermore, using scRNA-seq, we dissected the developmental trajectory of mLN SCs derived from postnatal to aged mice, identifying two distinct putative progenitors, namely CD34+ SC and fibroblastic reticular stromal cell (FRC) progenitors, which both feed the rapid postnatal LN expansion. Finally, we identified Irf3 as a key differentiation TF inferred from the epigenomic signature of mLN SCs that is dynamically expressed along the differentiation trajectories of FRCs, and validated Irf3 as a regulator of Cxcl9+ FRC differentiation. Together, our data constitute a comprehensive transcriptional and epigenomic map of mLN development and dissect location-specific, microbiota-independent properties of mLN non-endothelial SCs. As such, our findings represent a valuable resource to identify core transcriptional regulators that impinge on the developing mLN early in life, thereby shaping long-lasting intestinal adaptive immune responses.

immunology↗