Biomechanical strain patterns in Meckel's cartilage underlie mandibular variation in FGFR2 mouse models

Abstract Sequence variations in fibroblast growth factor receptor 2 (FGFR2) are associated with craniosynostosis syndromes, disrupting craniofacial development, yet early mandibular alterations remain poorly characterized. This study examined Meckel's cartilage (MC) and mandibular morphology in mouse models of Apert ( Fgfr2 +/P253R ) and Crouzon ( Fgfr2c C342Y/+ ) syndromes using Euclidean distance matrix analysis and finite element modeling at embryonic days 14.5 and 16.5. Apert mice exhibited significant MC shortening and elevated, widespread strain in the growth center area correlating with mandibular shortening and asymmetry. In contrast, Crouzon mice showed minor MC changes and localized strain peaks with larger mandibles. These biomechanical perturbations in Meckel's cartilage are associated with distinct mandibular phenotypes, consistent with a bidirectional relationship in which altered strain environments may both influence and reflect mandibular dysmorphogenesis during early development. The findings enhance our understanding of the biomechanical basis of mandibular anomalies associated with FGFR2 mutations, informing future investigations into craniofacial morphogenesis.

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Publication Details

Journal
The Anatomical Record
Published
2026-10-06
DOI
https://doi.org/10.1002/ar.70371
Primary Topic
Craniofacial Disorders and Treatments
Type
article
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article

Biomechanical strain patterns in Meckel's cartilage underlie mandibular variation in FGFR2 mouse models

Joan T. Richtsmeier, Jordan Wilson, Felippe Bevilacqua Prado, Ana Cláudia Rossi et al.
The Anatomical Record
Craniofacial Disorders and Treatments
article

Biomechanical strain patterns in Meckel's cartilage underlie mandibular variation in FGFR2 mouse models

Joan T. Richtsmeier, Jordan Wilson, Felippe Bevilacqua Prado, Ana Cláudia Rossi, Alexandre Rodrigues Freire, Kazuhiko Kawasaki, Susan M. Motch Perrine, Fred R. Foster
article en

Abstract

Abstract Sequence variations in fibroblast growth factor receptor 2 (FGFR2) are associated with craniosynostosis syndromes, disrupting craniofacial development, yet early mandibular alterations remain poorly characterized. This study examined Meckel's cartilage (MC) and mandibular morphology in mouse models of Apert ( Fgfr2 +/P253R ) and Crouzon ( Fgfr2c C342Y/+ ) syndromes using Euclidean distance matrix analysis and finite element modeling at embryonic days 14.5 and 16.5. Apert mice exhibited significant MC shortening and elevated, widespread strain in the growth center area correlating with mandibular shortening and asymmetry. In contrast, Crouzon mice showed minor MC changes and localized strain peaks with larger mandibles. These biomechanical perturbations in Meckel's cartilage are associated with distinct mandibular phenotypes, consistent with a bidirectional relationship in which altered strain environments may both influence and reflect mandibular dysmorphogenesis during early development. The findings enhance our understanding of the biomechanical basis of mandibular anomalies associated with FGFR2 mutations, informing future investigations into craniofacial morphogenesis.

The Anatomical Record
Pennsylvania State University (US), Universidade Estadual de Campinas (UNICAMP) (BR), Methodist University of Piracicaba (BR), Penn State Milton S. Hershey Medical Center (US)
Openalex Percentile: Top 14%
Craniofacial Disorders and Treatments
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Biomechanical strain patterns in Meckel's cartilage underlie mandibular variation in FGFR2 mouse models — Joan T. Richtsmeier, Jordan Wilson, et al. · The Anatomical Record (2026) | TGRS Research Map | TGRS