Pioneer factor Foxa2 mediates chromatin conformation changes in ligand-dependent activation of nuclear receptor FXR

Insights

Pioneer factor Foxa2 enables dynamic chromatin changes during nuclear receptor activation. This reveals a novel role for Foxa2 in regulating bile acid metabolism and liver function.

Area of Science:

  • Molecular Biology
  • Genomics
  • Biochemistry

Background:

  • Nuclear receptors are key drug targets, with Foxa2 known to facilitate their binding.
  • Foxa2 deletion in the liver leads to intrahepatic cholestasis, indicating its importance in bile acid metabolism.

Approach:

  • Foxa2 HiChIP was employed to analyze Foxa2-dependent long-range interactions in mouse livers.
  • Experiments involved treating mice with either a vehicle control or the FXR agonist GW4064.

Key Points:

  • FXR activation significantly increases global chromatin interactions and alters topological associated domains (TADs).
  • Foxa2-anchored loops increase substantially upon FXR activation, indicating dynamic chromatin remodeling.
  • Chromatin conformation, including genome-wide interactions and loops, changes drastically with FXR agonist addition.

Conclusions:

  • Foxa2 plays a novel role in facilitating ligand-induced chromatin conformational changes.
  • These findings extend the known function of Foxa2 in bile acid metabolism and liver homeostasis.

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