Fluorinated oxysterol analogues: Synthesis, molecular modelling and LXRβ activity

Cristian R Rodriguez1, Lautaro D Alvarez1, M Virginia Dansey1

  • 1Universidad de Buenos Aires, CONICET. UMYMFOR and Departamento de Química Orgánica, Facultad de Ciencias Exactas y Naturales, Pabellón 2, Ciudad Universitaria, C1428EGA Buenos Aires, Argentina.

Insights

Fluorinated oxysterols modulate liver X receptor (LXR) activity. Introducing fluorine atoms altered the LXR interaction profile, with one compound stabilizing the active conformation, offering potential therapeutic insights.

Area of Science:

  • Biochemistry and Molecular Biology
  • Medicinal Chemistry
  • Structural Biology

Background:

  • Liver X receptors (LXRs) are crucial nuclear receptors regulating lipid metabolism and inflammation.
  • Oxysterols, cholesterol metabolites, act as endogenous ligands for LXRs.
  • Modulating LXR activity is a therapeutic strategy for metabolic diseases.

Purpose of the Study:

  • To investigate the impact of fluorine substitution on oxysterol LXR ligand activity.
  • To synthesize and characterize novel fluorinated analogues of 27-norcholestenoic acid.
  • To elucidate the structural basis for altered LXR activity upon fluorination.

Main Methods:

  • Synthesis of 25,25-difluoro-27-norcholestenoic acid and its reduced alcohol derivative.
  • Luciferase reporter assays in HEK293T cells to assess LXRβ activity.
  • Molecular dynamics simulations of ligand-receptor complexes.

Main Results:

  • The 25,25-difluoro-27-norcholestenoic acid acted as an inverse agonist/antagonist, similar to its non-fluorinated counterpart.
  • The reduced derivative, 25,25-difluoro-27-norcholest-5-ene-3β,26-diol, exhibited agonist activity.
  • Molecular dynamics revealed distinct conformational changes induced by the difluoroacid and active participation of fluorine in stabilizing the difluoroalcohol-LXR complex.

Conclusions:

  • Fluorine substitution can significantly alter oxysterol LXR ligand profiles.
  • The difluoroalcohol derivative stabilizes the active LXR conformation through direct interactions.
  • These findings provide insights into designing LXR modulators with tailored activity for metabolic diseases.

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