TY - JOUR
T1 - The IL-4/STAT6/PPARγ signaling axis is driving the expansion of the RXR heterodimer cistrome, providing complex ligand responsiveness in macrophages
AU - Daniel, Bence
AU - Nagy, Gergely
AU - Horvath, Attila
AU - Czimmerer, Zsolt
AU - Cuaranta-Monroy, Ixchelt
AU - Poliska, Szilard
AU - Hays, Tristan T.
AU - Sauer, Sascha
AU - Francois-Deleuze, Jean
AU - Nagy, Laszlo
N1 - Funding Information:
Hungarian Scientific Research Fund [OTKA K124298, K126885, K116855 to L.N.]; Sanford Burnham Prebys Medical Research Institute; Center of Clinical Genomics and Personalized Medicine of the University of Debrecen; Centre National de Genotypage (CNG) Evry by Steven McGinn, Anne Boland, Doris Lechner and Marie Thérèse Bihoreau and supported by the European Sequencing and Genotyping Infrastructure (funded by the European Commission, FP7/2007–2013) [26205] (ESGI), as part of the ADIPOMACTX transnational access program and also at the Analytical Genomics Core Facility at the San-ford Burnham Prebys Medical Discovery Institute; American Heart Association (AHA) postdoctoral fellowship [17POST33660450 to B.D.]; Hungarian Scientific Research Fund [OTKA PD124843 to N.G.). Conflict of interest statement. None declared.
Publisher Copyright:
© The Author(s) 2018. Published by Oxford University Press on behalf of Nucleic Acids Research.
PY - 2018/5
Y1 - 2018/5
N2 - Retinoid X receptor (RXR) is an obligate heterodimeric partner of several nuclear receptors (NRs), and as such a central component of NR signaling regulating the immune and metabolic phenotype of macrophages. Importantly, the binding motifs of RXR heterodimers are enriched in the tissue-selective open chromatin regions of resident macrophages, suggesting roles in subtype specification. Recent genome-wide studies revealed that RXR binds to thousands of sites in the genome, but the mechanistic details how the cistrome is established and serves ligand-induced transcriptional activity remained elusive. Here we show that IL-4mediated macrophage plasticity results in a greatly extended RXR cistrome via both direct and indirect actions of the transcription factor STAT6. Activation of STAT6 leads to chromatin remodeling and RXR recruitment to de novo enhancers. In addition, STAT6 triggers a secondary transcription factor wave, including PPARγ. PPARγ appears to be indispensable for the development of RXR-bound de novo enhancers, whose activities can be modulated by the ligands of the PPARγ:RXR heterodimer conferring ligand selective cellular responses. Collectively, these data reveal the mechanisms leading to the dynamic extension of the RXR cistrome and identify the lipid-sensing enhancer sets responsible for the appearance of ligand-preferred gene signatures in alternatively polarized macrophages.
AB - Retinoid X receptor (RXR) is an obligate heterodimeric partner of several nuclear receptors (NRs), and as such a central component of NR signaling regulating the immune and metabolic phenotype of macrophages. Importantly, the binding motifs of RXR heterodimers are enriched in the tissue-selective open chromatin regions of resident macrophages, suggesting roles in subtype specification. Recent genome-wide studies revealed that RXR binds to thousands of sites in the genome, but the mechanistic details how the cistrome is established and serves ligand-induced transcriptional activity remained elusive. Here we show that IL-4mediated macrophage plasticity results in a greatly extended RXR cistrome via both direct and indirect actions of the transcription factor STAT6. Activation of STAT6 leads to chromatin remodeling and RXR recruitment to de novo enhancers. In addition, STAT6 triggers a secondary transcription factor wave, including PPARγ. PPARγ appears to be indispensable for the development of RXR-bound de novo enhancers, whose activities can be modulated by the ligands of the PPARγ:RXR heterodimer conferring ligand selective cellular responses. Collectively, these data reveal the mechanisms leading to the dynamic extension of the RXR cistrome and identify the lipid-sensing enhancer sets responsible for the appearance of ligand-preferred gene signatures in alternatively polarized macrophages.
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U2 - 10.1093/nar/gky157
DO - 10.1093/nar/gky157
M3 - Article
C2 - 29506156
AN - SCOPUS:85054167767
SN - 0305-1048
VL - 46
SP - 4425
EP - 4439
JO - Nucleic acids research
JF - Nucleic acids research
IS - 9
ER -