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Arifova, L.

Publications and source records attributed to Arifova, L..

3 recordsLinked to original sources

Profiling the CFTR Variant Selectivity and Off-Target Interactions of VX-121

More than 1,200 variants of the cystic fibrosis transmembrane conductance regulator gene (CFTR) are associated with cystic fibrosis (CF), an autosomal recessive pulmonary disease affecting over 100,000 people. Most people with CF bear a common CFTR variant (F508del) that can be treated with therapeutics containing "correctors" that suppress the misfolding of the CFTR chloride channel. However, the pharmacological responsiveness of other rare CF variants can vary tremendously. The approval of VX-121, a VX-445 analog that serves as a key component of AlyftrekTM, potentially provides a new therapeutic option for those with rare CF variants. Nevertheless, it remains unclear whether VX-121 offers superior rescue across the entire spectrum of rare CF variants. In this work, we use deep mutational scanning (DMS) to survey the impact of VX-121 on the plasma membrane expression of 232 rare CF variants. Our results show that VX-121 generally enhances CF variant expression more than VX-445 and is most potent towards variants with mutations in the first membrane spanning domain (MSD1). However, we identify one variant (Y1032C) with diminished proteostatic and functional selectivity for VX-121 relative to VX-445. Computational docking suggests that the native Y1032 side chain forms favorable interactions with VX-121 that are disrupted by this mutation in a manner that alters its coordination. Finally, using photo-crosslinking, we show that VX-121 avoids a key off-target interaction of VX-445. Together, our findings provide new insights into the similarities and differences between current approved CF therapeutics.

pharmacology and toxicology↗

Structural basis of PPARγ-mediated transcriptional repression by the covalent inverse agonist FX-909

Hyperactivation of peroxisome proliferator-activated receptor gamma (PPAR{gamma})-mediated transcription promotes tumor growth in urothelial (bladder) cancer, which can be inhibited by pharmacological compounds that repress PPAR{gamma} activity. FX-909 is a covalent PPAR{gamma} inverse agonist currently 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, originally reported more than 20 years ago and misclassified as an antagonist, and two recently 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 PPAR{gamma} LBD conformation compared to T0070907. The crystal structure of PPAR{gamma} LBD cobound to FX-909 and 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 PPAR{gamma} inverse agonists.

biophysics↗

Shifting the PPARγ conformational ensemble towards a transcriptionally repressive state improves covalent inhibitor efficacy

The nuclear receptor peroxisome proliferator-activated receptor gamma (PPAR{gamma}) regulates transcription in response to ligand binding at an orthosteric pocket within the ligand-binding domain (LBD). We previously showed that two covalent ligands, T0070907 and GW9662--extensively used as PPAR{gamma} inhibitors to assess off-target activity--weaken but do not completely block ligand binding via an allosteric mechanism associated with pharmacological inverse agonism (Shang et al., 2024). These covalent inhibitors shift the LBD towards a repressive conformation, where the activation function-2 (AF-2) helix 12 occupies the orthosteric pocket, competing with orthosteric ligand binding. Here, we provide additional support for this allosteric mechanism using two covalent inverse agonists, SR33065 and SR36708, which better stabilize the repressive LBD conformation and are more effective inhibitors of--but also do not completely inhibit--ligand cobinding. Furthermore, we show that ligand cobinding can occur with a previously reported PPAR{gamma} dual-site covalent inhibitor, SR16832, which appears to weaken ligand binding through a direct mechanism independent of the allosteric mechanism. These findings underscore the complex nature of the PPAR{gamma} LBD conformational ensemble and highlight the need to develop alternative methods for designing more effective covalent inhibitors.

biochemistry↗