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Quantitatively assessing mekosuchine crocodile locomotion by geometric morphometric and finite element analysis of the forelimb Project ID: 00000C982 Public
14 Media · 7 Specimens · Managed by: Michael Stein

Morphological shifts observed in the fossil record of a lineage potentially indicate concomitant shifts in ecology of that lineage. Mekosuchine crocodiles of Cenozoic Australia display departures from the typical eusuchian body-plan both in the cranium and postcranium. Previous qualitative studies have suggested that these crocodiles had a more terrestrial habitus than extant crocodylians, yet the capacity of mekosuchine locomotion remains to be tested. Limb bone shape, such as diaphyseal cross-section and curvature, has been related to habitual use and locomotory function across a wide variety of taxa. Available specimens of mekosuchine limbs, primarily humeri, are distinctly columnar compared with those of extant crocodylians. Here we apply a quantitative approach to biomechanics in mekosuchine taxa using both geomorphic morphometric and finite element methods to measure bone shape and estimate locomotory stresses in a comparative context. Our results show mekosuchines appear to diverge from extant semi-aquatic saltwater and freshwater crocodiles in cross-sectional geometry of the diaphysis and generate different structural stresses between models that simulate sprawling and high-walk gaits. The extant crocodylians display generally rounded cross-sectional diaphyseal outlines, which may provide preliminary indication of resistance to torsional loads that predominate during sprawling gait, whereas mekosuchine humeri appear to vary between a series of elliptical outlines. Mekosuchine structural stresses are comparatively lower than those of the extant crocodylians and reduce under high-walk gait in some instances. This appears to be a function of bending moments induced by differing configurations of diaphyseal curvature. Additionally, the neutral axis of structural stresses is differently oriented in mekosuchines. This suggests a shift in the focus of biomechanical optimisation, from torsional to axial loadings. Our results lend quantitative support to the terrestrial habitus hypothesis in so far as they suggest that mekosuchine humeri occupied a different morphospace than that associated with the semi-aquatic habit. The exact adaptational trajectory of mekosuchines, however, remains to be fully quantified. Novel forms appear to emerge among mekosuchines during the late Cenozoic. Their adaptational function is considered here, possible applications include navigation of uneven terrain and burrowing.

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  ID Part Object Taxonomy Type Date Added Publication Status  
000114010 Right humerus qm:f:57954 Mekosuchus sp. Mesh 2020-04-02 Open Download  
000116158 Right humerus qm:f:57954 Mekosuchus sp. Volumetric Image Series 2020-05-18 Open Download  
000116117 Left humerus ar:22161 Crocodylus johnsoni Volumetric Image Series 2020-05-15 Open Download  
000116157 Right humerus qm:f:57953 Pallimnarchus sp. Volumetric Image Series 2020-05-18 Open Download  
000116159 Right humerus qm:f:57955 Mekosuchus sp. Volumetric Image Series 2020-05-18 Open Download  
000114009 Right humerus qm:f:57953 Pallimnarchus sp. Mesh 2020-04-02 Open Download  
000114006 Right humerus ntm:p:907-70 Baru sp. Mesh 2020-04-02 Open Download  
000114005 Left humerus ar:22161 Crocodylus johnsoni Mesh 2020-04-02 Open Download  
000114012 Left humerus l-sw:xcb:Cp4 Crocodylus porosus Mesh 2020-04-02 Open Download  
000114011 Right humerus qm:f:57955 Mekosuchus sp. Mesh 2020-04-02 Open Download  
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