1α-Hydroxy derivatives of 7-dehydrocholesterol are selective liver X receptor modulators

Kaori Endo-Umeda1, Atsushi Aoyama2, Masato Shimizu3

  • 1Division of Biochemistry, Department of Biomedical Sciences, Nihon University School of Medicine, 30-1 Oyaguchi-Kamicho, Itabashi-ku, Tokyo 173-8610, Japan.

Insights

Novel 1α-hydroxy oxysterols, 1α-OH-7-DHC and 1,25-(OH)₂-7-DHC, function as unique liver X receptor (LXR) modulators. These compounds exhibit selective agonistic activity and potent anti-inflammatory effects, suggesting therapeutic potential for inflammatory diseases.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Pharmacology

Background:

  • Nuclear receptors liver X receptor (LXR) α and LXRβ regulate lipid metabolism, inflammation, immunity, and cell fate.
  • Oxysterols, including 7-dehydrocholesterol (7-DHC) metabolites, are endogenous LXR ligands.
  • Previous studies identified phytosterol derivatives and certain 7-DHC metabolites as LXR agonists.

Purpose of the Study:

  • To investigate the LXR modulating activity of 1α-hydroxy derivatives of 7-DHC.
  • To characterize the interaction of these novel oxysterols with LXR and the vitamin D receptor (VDR).
  • To assess their potential as therapeutic agents for inflammatory conditions.

Main Methods:

  • Luciferase reporter gene assays to measure LXR and VDR activation.
  • Cofactor peptide association assays to analyze coactivator/corepressor recruitment.
  • Molecular docking and alanine mutational analysis of LXRα.
  • Cell-based assays to examine LXR target gene expression and anti-inflammatory effects.

Main Results:

  • 1α-OH-7-DHC and 1,25-(OH)₂-7-DHC were identified as LXR modulators.
  • 1,25-(OH)₂-7-DHC activated both LXR and VDR, with distinct cofactor binding profiles compared to known agonists.
  • These oxysterols selectively modulated LXR target gene expression.
  • 1,25-(OH)₂-7-DHC demonstrated potent, LXR-dependent suppression of inflammatory gene expression.

Conclusions:

  • 1α-hydroxy-7-DHC derivatives are unique LXR modulators with selective agonistic and potent transrepression functions.
  • 1,25-(OH)₂-7-DHC exhibits distinct interaction mechanisms with LXRα.
  • These oxysterols represent promising candidates for LXR-targeted therapies against inflammatory diseases.

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