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Genome-wide chromatin profiling reveals a nonlimiting role for RXR in macrophage-like cells stimulated with multiple nuclear receptor agonists.

Retinoid X receptor (RXR) is an obligate heterodimerization partner for many nuclear receptors. In the absence of ligands, RXR occupies thousands of genomic regions, with its binding landscape predominantly determined by cell identity. In the presence of agonists of RXR or its partners, RXR occupancy is changed at a subset of binding regions. The characteristics of these ligand-responsive binding regions remain largely unexplored. We used ChIP-seq to profile RXR occupancy in PMA-differentiated THP-1 cells treated with agonists of RXR or partner receptors, including RARα, VDR, PPARδ, PPARγ, LXRs, and TR, or a "cocktail" containing multiple agonists. The RXR agonist LG268 produced a stronger increase in RXR occupancy than any of the six partner-receptor agonists or their combination. The relevance of ligand-induced RXR peaks was confirmed by the analyses of motif enrichment and RXR occupancy at regulatory elements of target genes. RXR binding was investigated in more detail in cells treated with the VDR agonist, calcitriol. Calcitriol markedly enhanced VDR binding, but the corresponding increase in RXR occupancy was less pronounced. We found that both ligand-induced and unresponsive RXR peaks were involved in gene regulation, and only a small subset (∼3%) of calcitriol-regulated genes exhibited decreases in both RXR binding and mRNA levels in response to combined agonist treatment. These results support a model in which RXR functions as a nonlimiting module in a macrophage-like cell type, and interference between pathways is minimally attributable to RXR sequestration.

Humans

The farnesoid X receptor activates transcription independently of RXR at non-canonical response elements.

The farnesoid X receptor (FXR) is a nuclear receptor (NR) known to obligately heterodimerize with the retinoid X receptor (RXR). FXR is expressed as four isoforms (α1-α4) that drive transcription from IR-1 (inverted repeat-1) response elements (REs). Recently, we found that FXR isoforms α2/α4 also activate transcription from non-canonical ER-2 (everted repeat-2) REs, mediating most metabolic effects of general FXR activation. Here, we explored molecular determinants of regulation by FXRα2 from ER-2 REs through quantitative interaction proteomics, site-directed mutagenesis and transcriptomics. We discovered FXRα2 binds to and activates ER-2 elements in vitro and in reporter assays independently of RXR. Genome-wide binding analysis in mouse liver revealed higher ER-2 motif enrichment in FXR sites lacking RXR. Abrogation of FXRα2:RXR heterodimerization abolished IR-1, but preserved ER-2 transactivation. Transcriptome-wide, RXR overexpression inhibited 25% of FXRα2 targets in HepG2. These genes were specifically activated by the heterodimerization-deficient mutant FXRα2L434R, enriched for ER-2 motifs at their promoters, and involved in lipid metabolism and ammonia detoxification. In conclusion, RXR acts as a molecular switch, inhibiting FXRα2 activation from ER-2 while enhancing it from canonical IR-1 REs. Our results showcase FXR as the first NR with isoform-specific RXR-independent REs, highlighting a new layer of regulation and complexity for RXR-heterodimerizing NRs.

Humans

BHLHE40 and ChREBP associate with hepatic enhancer clusters containing PPARα, RXRα, and HNF4 nuclear receptors.

BHLHE40/DEC1 is a basic helix-loop-helix transcription factor (TF) that regulates circadian rhythm and T-cell responses. In hepatocytes, its function and interplay with other TFs are poorly understood. Employing a genome-wide approach, we show that its genomic binding strongly overlapped with that of carbohydrate response-element binding protein, a sugar-sensing TF and known inducer of BHLHE40 expression. Transcriptomic analysis of primary mouse hepatocytes revealed reduced expression of genes involved in genomic stability on Bhlhe40 knockdown by siRNA. Bhlhe40 depletion potentiated fructose responsiveness of genes involved in cell-cycle regulation. Strikingly, genomic binding of BHLHE40 extensively overlapped with enhancers occupied by PPARα, RXRα, and HNF4 nuclear receptors and BHLHE40 fine-tuned the expression of PPARα target genes. Using HEK293 cells, we further observed that BHLHE40 physically interacted with RXRα and PPARα cofactors. Collectively, our data suggest that through cooperation with carbohydrate response-element binding protein and nuclear receptors, BHLHE40 is a central regulator of hepatic gene expression with potential to integrate inputs from nutrient signals contributing to the metabolic flexibility of the liver.

Animals