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Published on: May 9, 2025
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.
Abstract:
Liver X receptors (LXRs) are nuclear receptors that play central roles in the transcriptional control of lipid metabolism. The ability of LXRs to integrate metabolic and inflammation signalling makes them attractive targets for intervention in human metabolic diseases. Several oxidized metabolites of cholesterol (oxysterols) are endogenous LXR ligands, that modulate their transcriptional responses. While 25R-cholestenoic acid is an agonist of the LXRs, the synthetic analogue 27-norcholestenoic acid that lacks the 25-methyl is an inverse agonist. This change in the activity profile is triggered by a disruption of a key interaction between residues His435 and Trp457 that destabilizes the H11-H12 region of the receptor and favors the binding of corepressors. The introduction of fluorine atoms on the oxysterol side chain can favor both hydrophobic interactions as well as hydrogen bonds with the fluorine atoms and may thus induce changes in the receptor that may lead to changes in the activity profile. To evaluate these effects we have synthesized two fluorinated 27-nor-steroids, analogues of 27-norcholestenoic acid, the 25,25-difluoroacid and the corresponding 26-alcohol. The key step was a Reformatsky reaction on the C-24 cholenaldehyde, with ethyl bromodifluoroacetate under high intensity ultrasound (HIU) irradiation, followed by a Barton-McCombie type deoxygenation. Activity was evaluated in a luciferase reporter assay in the human HEK293T cells co-transfected with full length human LXRβ expression vector. The 25,25-difluoro-27-norcholestenoic acid was an inverse agonist and antagonist similar to its non-fluorinated analogue while its reduced derivative 25,25-difluoro-27-norcholest-5-ene-3β,26-diol was an agonist. Molecular dynamics simulation of the ligand-receptor complexes showed that the difluoroacid disrupted the His435-Trp457 interaction although the resulting conformational changes were different from those induced by the non-fluorinated analogue. In the case of the difluoroalcohol, the fluorine atoms actively participated in the interaction with several residues in the ligand binding pocket leading to a stabilization of the active receptor conformation.
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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