bioRxiv Science⌕ Search

Biology subjects

Bonatto-Paese, C. L.

Publications and source records attributed to Bonatto-Paese, C. L..

2 recordsLinked to original sources

Pharmacological intervention of the FGF-PTH axis as a potential therapeutic for ciliopathies

Ciliopathies represent a disease class characterized by a broad range of phenotypes including polycystic kidneys and skeletal anomalies. Ciliopathic skeletal phenotypes are among the most common and most difficult to treat due to a poor understanding of the pathological mechanisms leading to disease. Using an avian model (talpid2) for a human ciliopathy with skeletal anomalies (Orofaciodigital syndrome 14), we identified disruptions in the FGF23-PTH axis that resulted in reduced calcium uptake in the developing mandible and subsequent micrognathia. While pharmacological intervention with the FDA-approved pan-FGFR inhibitor AZD4547 alone rescued expression of the FGF target Sprouty2, it did not significantly rescue micrognathia. In contrast, treatment with a cocktail of AZD4547 and Teriparatide acetate, a PTH agonist and FDA-approved treatment for osteoporosis, resulted in a molecular, cellular, and phenotypic rescue of ciliopathic micrognathia in talpid2 mutants. Together, these data provide novel insight into pathological molecular mechanisms associated with ciliopathic skeletal phenotypes and a potential therapeutic strategy for a pleiotropic disease class with limited to no treatment options. Summary StatementTreatment options for ciliopathic phenotypes are very limited. Using an avian model, we report a novel molecular mechanism and potential therapeutic treatment for ciliopathic micrognathia.

developmental biology↗

Ciliopathic micrognathia is caused by aberrant skeletal differentiation and remodeling

Ciliopathies represent a growing class of diseases caused by defects in microtubule-based organelles called primary cilia. Approximately 30% of ciliopathies can be characterized by craniofacial phenotypes such as craniosynostosis, cleft lip/palate and micrognathia. Patients with ciliopathic micrognathia experience a particular set of difficulties including impaired feeding and breathing and have extremely limited treatment options. To understand the cellular and molecular basis for ciliopathic micrognathia, we utilized the talpid2 (ta2), a bona fide avian model for the human ciliopathy Oral-Facial-Digital syndrome subtype 14 (OFD14). Histological analyses revealed that the onset of ciliopathic micrognathia in ta2 embryos occurred at the earliest stages of mandibular development. Neural crest-derived skeletal progenitor cells were particularly sensitive to a ciliopathic insult, undergoing unchecked passage through the cell cycle and subsequent increased proliferation. Furthermore, whereas neural crest-derived skeletal differentiation was initiated, osteoblast maturation failed to progress to completion. Additional molecular analyses revealed that an imbalance in the ratio of bone deposition and resorption also contributed to ciliopathic micrognathia in ta2 embryos. Thus, our results suggest that ciliopathic micrognathia is a consequence of multiple, aberrant cellular processes necessary for skeletal development, and provide potential avenues for future therapeutic treatments.

developmental biology↗