TYRA-300, an FGFR3-selective inhibitor, promotes bone growth in two FGFR3-driven models of chondrodysplasia

  • JCI Insight. 2025 Apr 3;10(9):e189307. doi: 10.1172/jci.insight.189307.
Jacqueline H Starrett  1 Clara Lemoine  2 Matthias Guillo  2 Chantal Fayad  2 Nabil Kaci  2 Melissa Neal  1 Emily A Pettitt  1 Melissandre Pache  1 Qing Ye  1 My Chouinard  1 Eric L Allen  1 Geneviève Baujat  2  3 Robert L Hudkins  1 Michael B Bober  1 Todd Harris  1 Ronald V Swanson  1 Laurence Legeai-Mallet  2
Affiliations
  • 1. Tyra Biosciences, Carlsbad, California, USA.
  • 2. Université de Paris Cité, Imagine Institute, Laboratory of Molecular and Physiopathological Bases of Osteochondrodysplasia, INSERM UMR1163, Paris, France.
  • 3. Department of Genomic Medicine for Rare Diseases, French Reference Center for Constitutional Bone Diseases, Necker-Enfants Malades Hospital, Paris, France.
Abstract

Achondroplasia (ACH) and hypochondroplasia (HCH), the two most common types of dwarfism, are each caused by FGFR3 gain-of-function mutations that result in increased FGFR3 signaling, which disrupts chondrogenesis and osteogenesis, resulting in disproportionately shortened long bones. In this study, TYRA-300, a potent and selective FGFR3 Inhibitor, was evaluated in 3 genetic contexts: wild-type mice, the Fgfr3Y367C/+ mouse model of ACH, and the Fgfr3N534K/+ mouse model of HCH. In each model, TYRA-300 treatment increased nasoanal length and tibia and femur length. In the two FGFR3-altered models, TYRA-300-induced growth partially restored the disproportionality of long bones. Histologic analysis of the growth plate in Fgfr3Y367C/+ mice revealed that TYRA-300 mechanistically increased both proliferation and differentiation of chondrocytes. Importantly, children with ACH can experience medical complications due to foramen magnum stenosis, and TYRA-300 significantly improved the size and shape of the skull and foramen magnum in Fgfr3Y367C/+ mice. Spinal stenosis is also a frequent complication, and TYRA-300 increased the lumbar vertebrae length and improved the shape of the intervertebral discs in both models. Taken together, these studies demonstrate that the selective FGFR3 Inhibitor TYRA-300 led to a significant increase in bone growth in two independent FGFR3-driven preclinical models as well as in wild-type mice.

Keywords
Bone biology; Bone disease; Cell biology; Drug therapy; Mouse models.
Products