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August 14, 20250 citations

Structural Basis of PPARγ-Mediated Transcriptional Repression by the Covalent Inverse Agonist FX-909.

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ZLZane T. LaughlinLALiudmyla ArifovaPMPaola Munoz‐Tello

Key Points

  • FX-909 demonstrates improved transcriptional repression in urothelial cancer by acting as a pparγ inverse agonist.
  • Comparative studies show FX-909 stabilizes a repressive pparγ conformation more effectively than t0070907.
  • Functional profiling and NMR analyzed the mechanisms of FX-909 and other covalent inverse agonists.
  • These insights underscore the potential of pparγ inverse agonists like FX-909 in treating muscle-invasive bladder cancer.

Abstract

Hyperactivation of peroxisome proliferator-activated receptor γ-mediated transcription promotes tumor growth in urothelial (bladder) cancer, which can be inhibited by compounds that repress PPARγ activity. FX-909 is a covalent PPARγ inverse agonist in phase 1 clinical trials for advanced solid malignancies, including muscle-invasive bladder cancer. Here, we compared the mechanism of action of FX-909 to other covalent inverse agonists including T0070907, reported more than 20 years ago and misclassified as an antagonist, and two reported improved covalent inverse agonist analogs, SR33068 and BAY-4931. Functional profiling and NMR studies reveal that FX-909 displays improved corepressor-selective inverse agonism and better stabilizes a transcriptionally repressive PPARγ LBD conformation compared to T0070907. The crystal structure of PPARγ LBD cobound to FX-909 and the NCoR1 corepressor peptide reveals a repressive conformation shared by other covalent inverse agonists. These findings build on recent studies highlighting the pharmacological significance and clinical relevance of transcriptionally repressive PPARγ inverse agonists.

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Cite This Study

Laughlin et al. (2025) studied this question.

synapsesocial.com/papers/689fc6912abb084d53ed25f2https://doi.org/10.1021/acs.jmedchem.5c01252
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