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Small molecule inhibition rescues the skeletal dysplasia phenotype of Trpv4 mutant mice
Lisette Nevarez, Taylor K. Ismaili, Jennifer Zieba, Jorge Martin, Davis Wachtell, Derick Diaz, Jocelyn A. Ramirez, Valeria Aceves, Joshua Ito, Ryan S. Gray, David Goldstein, Sunil Sahdeo, Deborah Krakow, Daniel H. Cohn
Lisette Nevarez, Taylor K. Ismaili, Jennifer Zieba, Jorge Martin, Davis Wachtell, Derick Diaz, Jocelyn A. Ramirez, Valeria Aceves, Joshua Ito, Ryan S. Gray, David Goldstein, Sunil Sahdeo, Deborah Krakow, Daniel H. Cohn
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Research Article Bone biology Cell biology Genetics

Small molecule inhibition rescues the skeletal dysplasia phenotype of Trpv4 mutant mice

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Abstract

The TRPV4 skeletal dysplasias are characterized by short stature, short limbs with prominent large joints, and progressive scoliosis. They result from dominant missense mutations that activate the TRPV4 calcium permeable ion channel. As a platform to understand the mechanism of disease and to test the hypothesis that channel inhibition could treat these disorders, we developed a knock-in mouse that conditionally expresses the p.R594H Trpv4 mutation. Embryonic, chondrocyte-specific induction of the mutation using Col2a1-Cre resulted in a skeletal dysplasia affecting the long bones, spine, and craniofacial skeletal elements, consistent with the human skeletal dysplasia phenotypes produced by TRPV4 mutations. Cartilage growth plate histological abnormalities included disorganized proliferating chondrocyte columns and reduced hypertrophic chondrocyte development, reflecting abnormal endochondral ossification. In vivo treatment with the TRPV4-specific inhibitor GSK2798745 markedly improved the radiographic skeletal phenotype and rescued the growth plate histological abnormalities. ScRNA-Seq of chondrocyte transcripts from affected mice identified calcium-mediated effects on multiple signaling pathways as potential mechanisms underlying the defects in linear and cartilage appositional growth observed in both mutant mice and patients. These results provide preclinical evidence demonstrating TRPV4 inhibition as a rational, mechanism-based therapeutic strategy to ameliorate disease progression and severity in the TRPV4 skeletal dysplasias.

Authors

Lisette Nevarez, Taylor K. Ismaili, Jennifer Zieba, Jorge Martin, Davis Wachtell, Derick Diaz, Jocelyn A. Ramirez, Valeria Aceves, Joshua Ito, Ryan S. Gray, David Goldstein, Sunil Sahdeo, Deborah Krakow, Daniel H. Cohn

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Figure 7

Trpv4 perichondrial cell differential gene expression indicates upregulation of chondrocyte differentiation.

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Trpv4 perichondrial cell differential gene expression indicates upregul...
(A) Top relevant enriched KEGG pathway analysis terms between WT and Trpv4 p.R594H perichondrial cell clusters. (B) Violin plots showing increased expression of Nfatc1, Nfatc2, Sox9, and selected genes encoding cartilage extracellular matrix proteins, quantified in Supplemental Data Set 2. (C) Model of the hypothesized signaling pathway initiated by increased intracellular calcium resulting from activation of the cKI Trpv4 allele by Col2a1-Cre. Under this model, increase calcium leads to calmodulin (CaM, dark blue circle) activation (light blue circle with activation indicated by the asterisk), which then binds to Calcineurin, resulting in the activation of its phosphatase activity. The activated Calcineurin then dephosphorylates NFATC1 and NFATC2, activating them and allowing them to translocate to the nucleus, where they induce Sox9 expression. SOX9 then transcriptionally activates expression of multiple downstream cartilage extracellular matrix genes.

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