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The evolution of femoral morphology in giant non-avian theropod dinosaurs.
Pintore, Romain; Hutchinson, John R; Bishop, Peter J; Tsai, Henry P; Houssaye, Alexandra.
Afiliación
  • Pintore R; Mécanismes adaptatifs et évolution (MECADEV) / UMR 7179. CNRS / Muséum National d'Histoire Naturelle, Paris, FR.
  • Hutchinson JR; Structure and Motion Laboratory, Royal Veterinary College, Hatfield, UK.
  • Bishop PJ; Structure and Motion Laboratory, Royal Veterinary College, Hatfield, UK.
  • Tsai HP; Museum of Comparative Zoology and Department of Organismic and Evolutionary Biology, Harvard University, Cambridge, USA.
  • Houssaye A; Geosciences Program, Queensland Museum, Brisbane, Queensland, AU.
Paleobiology ; 50(2): 308-329, 2024 May.
Article en En | MEDLINE | ID: mdl-38846629
ABSTRACT
Theropods are obligate bipedal dinosaurs that appeared 230 million years ago and are still extant as birds. Their history is characterized by extreme variations in body mass, with gigantism evolving convergently between many lineages. However, no quantification of hindlimb functional morphology has shown if these body mass increases led to similar specializations between distinct lineages. Here we studied femoral shape variation across 41 species of theropods (n= 68 specimens) using a high-density 3D geometric morphometric approach. We demonstrated that the heaviest theropods evolved wider epiphyses and a more distally located fourth trochanter, as previously demonstrated in early archosaurs, along with an upturned femoral head and a mediodistal crest that extended proximally along the shaft. Phylogenetically informed analyses highlighted that these traits evolved convergently within six major theropod lineages, regardless of their maximum body mass. Conversely, the most gracile femora were distinct from the rest of the dataset, which we interpret as a femoral specialization to "miniaturization" evolving close to Avialae (bird lineage). Our results support a gradual evolution of known "avian" features, such as the fusion between lesser and greater trochanters and a reduction of the epiphyses' offset, independently from body mass variations, which may relate to a more "avian" type of locomotion (more knee-than hip-driven). The distinction between body mass variations and a more "avian" locomotion is represented by a decoupling in the mediodistal crest morphology, whose biomechanical nature should be studied to better understand the importance of its functional role in gigantism, miniaturization and higher parasagittal abilities.

Texto completo: 1 Base de datos: MEDLINE Idioma: En Revista: Paleobiology Año: 2024 Tipo del documento: Article País de afiliación: Francia

Texto completo: 1 Base de datos: MEDLINE Idioma: En Revista: Paleobiology Año: 2024 Tipo del documento: Article País de afiliación: Francia