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PIN1 is a new therapeutic target of craniosynostosis
1BK21 Program, Department of Molecular Genetics and Dental Pharmacology and Therapeutics, School of Dentistry and Dental Research Institute, Seoul National University, Seoul, Republic of Korea.
Abstract:
Gain-of-function mutations in fibroblast growth factor receptors (FGFRs) cause congenital skeletal anomalies, including craniosynostosis (CS), which is characterized by the premature closure of craniofacial sutures. Apert syndrome (AS) is one of the severest forms of CS, and the only treatment is surgical expansion of prematurely fused sutures in infants. Previously, we demonstrated that the prolyl isomerase peptidyl-prolyl cis-trans isomerase interacting 1 (PIN1) plays a critical role in mediating FGFR signaling and that Pin1+/- mice exhibit delayed closure of cranial sutures. In this study, using both genetic and pharmacological approaches, we tested whether PIN1 modulation could be used as a therapeutic regimen against AS. In the genetic approach, we crossbred Fgfr2S252W/+, a mouse model of AS, and Pin1+/- mice. Downregulation of Pin1 gene dosage attenuated premature cranial suture closure and other phenotypes of AS in Fgfr2S252W/+ mutant mice. In the pharmacological approach, we intraperitoneally administered juglone, a PIN1 enzyme inhibitor, to pregnant Fgfr2S252W/+ mutant mice and found that this treatment successfully interrupted fetal development of AS phenotypes. Primary cultured osteoblasts from Fgfr2S252W/+ mutant mice expressed high levels of FGFR2 downstream target genes, but this phenotype was attenuated by PIN1 inhibition. Post-translational stabilization and activation of Runt-related transcription factor 2 (RUNX2) in Fgfr2S252W/+ osteoblasts were also attenuated by PIN1 inhibition. Based on these observations, we conclude that PIN1 enzyme activity is important for FGFR2-induced RUNX2 activation and craniofacial suture morphogenesis. Moreover, these findings highlight that juglone or other PIN1 inhibitors represent viable alternatives to surgical intervention for treatment of CS and other hyperostotic diseases.
Insights
PIN1 inhibition offers a potential new treatment for Apert syndrome (AS), a severe form of craniosynostosis (CS). Targeting PIN1 can prevent premature skull fusion in AS mouse models, suggesting a non-surgical therapeutic alternative.
Area of Science:
- Developmental Biology
- Genetics
- Pharmacology
Background:
- Gain-of-function mutations in fibroblast growth factor receptors (FGFRs) lead to craniosynostosis (CS), a condition involving premature closure of skull sutures.
- Apert syndrome (AS) is a severe CS form, currently treated only by surgery in infants.
- Peptidyl-prolyl cis-trans isomerase interacting 1 (PIN1) is implicated in FGFR signaling, and its deficiency delays cranial suture closure.
Purpose of the Study:
- To investigate PIN1 modulation as a therapeutic strategy for AS.
- To assess the efficacy of genetic and pharmacological inhibition of PIN1 in AS mouse models.
Main Methods:
- Crossbreeding of Apert syndrome (AS) mouse models (Fgfr2S252W/+) with Pin1+/- mice to downregulate Pin1 gene dosage.
- Administering juglone, a PIN1 inhibitor, to pregnant AS mouse models.
- Analyzing osteoblast gene expression and Runt-related transcription factor 2 (RUNX2) activation in response to PIN1 inhibition.
Main Results:
- Genetic downregulation of Pin1 attenuated premature cranial suture closure and AS phenotypes in mice.
- Pharmacological inhibition of PIN1 with juglone during fetal development prevented AS phenotypes.
- PIN1 inhibition reduced FGFR2 downstream gene expression and RUNX2 activation in AS osteoblasts.
Conclusions:
- PIN1 enzyme activity is crucial for FGFR2-mediated RUNX2 activation and craniofacial suture development.
- Juglone and other PIN1 inhibitors show promise as non-surgical treatments for CS and related hyperostotic diseases.
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