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Tyrosine agonists reverse the molecular defects associated with dominant-negative mutations in human peroxisome
Maura Agostini1, Mark Gurnell, David B Savage
1Department of Medicine, University of Cambridge, Addenbrooke's Hospital, United Kingdom.
Abstract:
Loss-of-function mutations in the ligand-binding domain of human peroxisome proliferator-activated receptor gamma (PPARgamma) are associated with a novel syndrome characterized by partial lipodystrophy and severe insulin resistance. Here we have further characterized the properties of natural dominant-negative PPARgamma mutants (P467L, V290M) and evaluated the efficacy of putative natural ligands and synthetic thiazolidinedione (TZD) or tyrosine-based (TA) receptor agonists in rescuing mutant receptor function. A range of natural ligands failed to activate the PPARgamma mutants and their transcriptional responses to TZDs (e.g. pioglitazone, rosiglitazone) were markedly attenuated, whereas TAs (e.g. farglitazar) corrected defects in ligand binding and coactivator recruitment by the PPARgamma mutants, restoring transcriptional function comparable with wild-type receptor. Transcriptional silencing via recruitment of corepressor contributes to dominant-negative inhibition of wild type by the P467L and V290M mutants and the introduction of an artificial mutation (L318A) disrupting corepressor interaction abrogated their dominant-negative activity. More complete ligand-dependent corepressor release and reversal of dominant-negative inhibition was achieved with TA than TZD agonists. Modeling suggests a structural basis for these observations: both mutations destabilize helix 12 to favor receptor-corepressor interaction; conversely, farglitazar makes more extensive contacts than rosiglitazone within the ligand-binding pocket, to stabilize helix 12, facilitating corepressor release and transcriptional activation. Farglitazar was a more potent inducer of PPARgamma target gene (aP2) expression in peripheral blood mononuclear cells with the P467L mutation. Having shown that rosiglitazone is of variable and limited efficacy in these subjects, we suggest that TAs may represent a more rational therapeutic approach.
Insights
Dominant-negative peroxisome proliferator-activated receptor gamma (PPARgamma) mutants cause severe insulin resistance. Tyrosine-based agonists, unlike thiazolidinediones, effectively restored PPARgamma function and may offer a better therapeutic approach.
Area of Science:
- Endocrinology
- Molecular Biology
- Genetics
Background:
- Loss-of-function mutations in peroxisome proliferator-activated receptor gamma (PPARgamma) cause partial lipodystrophy and severe insulin resistance.
- Dominant-negative PPARgamma mutants (P467L, V290M) were previously identified and require further characterization.
Purpose of the Study:
- To characterize natural dominant-negative PPARgamma mutants.
- To evaluate the efficacy of natural ligands, thiazolidinediones (TZDs), and tyrosine-based (TA) agonists in rescuing mutant PPARgamma function.
- To elucidate the molecular mechanisms underlying the dominant-negative activity and agonist rescue.
Main Methods:
- Characterization of PPARgamma mutants (P467L, V290M).
- Assays to evaluate transcriptional responses to natural ligands, TZDs (pioglitazone, rosiglitazone), and TAs (farglitazar).
- Corepressor interaction studies and structural modeling.
- Analysis of PPARgamma target gene (aP2) expression in patient cells.
Main Results:
- Natural ligands failed to activate PPARgamma mutants; TZD efficacy was attenuated.
- TA agonists (farglitazar) corrected ligand binding and coactivator recruitment defects, restoring transcriptional function.
- Dominant-negative inhibition involved corepressor recruitment, which was abrogated by disrupting corepressor interaction.
- TA agonists achieved more complete corepressor release than TZDs.
- Farglitazar demonstrated greater potency in inducing PPARgamma target gene expression in patient cells.
Conclusions:
- Tyrosine-based agonists are more effective than thiazolidinediones in rescuing dominant-negative PPARgamma mutant function.
- TA agonists represent a potentially more rational therapeutic strategy for patients with PPARgamma mutations causing lipodystrophy and insulin resistance.
- Structural modeling supports the differential efficacy of agonists based on helix 12 stabilization and corepressor release.
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