2026/05/01 by Camille Bader, Ursula B. Göhlich, Alexandra Houssaye · 1 voice
Earth and Planetary Sciences · Mathematics · #Paleontology and Evolutionary Biology #Evolution and Paleontology Studies #Morphological variations and asymmetry
paper · doi:10.1111/pala.70067
Abstract Terrestrial vertebrates rely on their skeleton to provide structural support and allow the movement of the body. Heavy, graviportal taxa, such as extant elephants, exhibit numerous adaptive features in their bone anatomy enabling them to withstand their immense weight. Conversely, dwarfing events impose novel biomechanical constraints on the skeleton. The case of dwarf elephants raises the question of how graviportal animals adapt when undergoing drastic size reduction, and whether they retain graviportal features or exhibit paedomorphic traits. In this study, we examine the morphology and microanatomy of the six long bones in two fossil species of dwarf elephants, Palaeoloxodon tiliensis (adults) and P. falconeri (juveniles), using both quantitative and qualitative approaches (3D geometric morphometrics, virtual slice comparisons, compact bone thickness cartographies). Our results show that in P. tiliensis , the reduction in body mass is reflected in the morphology and microanatomy of the bones, suggesting a more flexed limb posture and a reduced parasagittal orientation compared to in fully graviportal proboscideans. Despite this shift, several key graviportal adaptations are retained in P. tiliensis . Additionally, comparisons with early, non‐graviportal proboscideans indicate that dwarf elephants exhibit a partial reversion to ancestral limb traits, while maintaining essential weight‐bearing features. Finally, adult P. tiliensis and juvenile P. falconeri specimens exhibit a medullary area filled with trabecular bone, similar to that of extant elephants. Dwarf elephants are thus not scaled‐down versions of their mainland ancestors, but instead display a combination of juvenile, graviportal and ancestral traits reflecting the impact of dwarfism on their evolutionary trajectory.