PPARγ Corepression Involves Alternate Ligand Conformation and Inflation of H12 Ensembles.
Rebecca L FrkicJordan L PederickAimee J HorsfallBlagojce JovcevskiElise E CrameWioleta KowalczykTara Louise PukalaMi Ra ChangJie ZhengAnne-Laure BlayoAndrew D AbellTheodore M KameneckaJoshua S HarbortJeffery R HarmerPatrick R GriffinJohn B BruningPublished in: ACS chemical biology (2023)
Inverse agonists of peroxisome proliferator activated receptor γ (PPARγ) have emerged as safer alternatives to full agonists for their reduced side effects while still maintaining impressive insulin-sensitizing properties. To shed light on their molecular mechanism, we characterized the interaction of the PPARγ ligand binding domain with SR10221. X-ray crystallography revealed a novel binding mode of SR10221 in the presence of a transcriptionally repressing corepressor peptide, resulting in much greater destabilization of the activation helix, H12, than without corepressor peptide. Electron paramagnetic resonance provided in-solution complementary protein dynamic data, which revealed that for SR10221-bound PPARγ, H12 adopts a plethora of conformations in the presence of corepressor peptide. Together, this provides the first direct evidence for corepressor-driven ligand conformation for PPARγ and will allow the development of safer and more effective insulin sensitizers suitable for clinical use.
Keyphrases
- insulin resistance
- type diabetes
- fatty acid
- magnetic resonance imaging
- single cell
- molecular dynamics simulations
- skeletal muscle
- binding protein
- small molecule
- high resolution
- adipose tissue
- crystal structure
- big data
- glycemic control
- metabolic syndrome
- computed tomography
- electronic health record
- protein protein
- deep learning
- data analysis
- solar cells
- magnetic resonance
- weight loss