Author:
Woronowicz Katherine C.,Gline Stephanie E.,Herfat Safa T.,Fields Aaron J.,Schneider Richard A.
Abstract
AbstractHow does form arise during development and change during evolution? How does form relate to function, and what enables embryonic structures to presage their later use in adults? To address these questions, we leverage the distinct functional morphology of the jaw in duck, chick, and quail. In connection with their specialized mode of feeding, duck develop a secondary cartilage at the tendon insertion of their jaw adductor muscle on the mandible. An equivalent cartilage is absent in chick and quail. We hypothesize that species-specific jaw architecture and mechanical forces promote secondary cartilage in duck through the differential regulation of FGF and TGFβ signaling. First, we perform transplants between chick and duck embryos and demonstrate that the ability of neural crest mesenchyme (NCM) to direct the species-specific insertion of muscle and the formation of secondary cartilage depends upon the amount and spatial distribution of NCM-derived connective tissues. Second, we quantify motility and build finite element models of the jaw complex in duck and quail, which reveals a link between species-specific jaw architecture and the predicted mechanical force environment. Third, we investigate the extent to which mechanical load mediates FGF and TGFβ signaling in the duck jaw adductor insertion, and discover that both pathways are mechano-responsive and required for secondary cartilage formation. Additionally, we find that FGF and TGFβ signaling can also induce secondary cartilage in the absence of mechanical force or in the adductor insertion of quail embryos. Thus, our results provide novel insights on molecular, cellular, and biomechanical mechanisms that couple musculoskeletal form and function during development and evolution.
Publisher
Cold Spring Harbor Laboratory
Reference137 articles.
1. Albrecht, U. , Eichele, G. , Helms, J.A. , Lu, H.-C. , 1997. Visualization of gene expression patterns by in situ hybridization. Molecular and cellular methods in developmental toxicology, 23–48.
2. Relationship between the angle of the coronoid process of the mandible and the electromyographic activity of the temporal muscle in skeletal Class I and III individuals;Journal of oral rehabilitation,2010
3. Relationship between the inclination of the coronoid process of the mandible and the electromyographic activity of the temporal muscle in skeletal Class I and II individuals;Journal of oral science,2008
4. The role of transforming growth factor-β signalling in the patterning of the proximal processes of the murine dentary
5. Anthwal, N. , Peters, H. , Tucker, A.S. , 2015. Species-specific modifications of mandible shape reveal independent mechanisms for growth and initiation of the coronoid. Evodevo 6.