Decoupling geometry and topography reveals contrasting ecomorphological signals in carnivoran carnassial teeth

Vankelst, M orcid iconORCID: 0009-0003-3048-2100, Fischer, V orcid iconORCID: 0000-0002-8808-6747, Michaud, M orcid iconORCID: 0000-0001-7075-9862, Tamagnini, D, Pollock, TI, Meloro, C orcid iconORCID: 0000-0003-0175-1706, Tseng, ZJ orcid iconORCID: 0000-0001-5335-4230 and Chatar, N (2026) Decoupling geometry and topography reveals contrasting ecomorphological signals in carnivoran carnassial teeth. Proceedings of the Royal Society B Biological Sciences, 293 (2076). ISSN 0962-8452

[thumbnail of Decoupling geometry and topography reveals contrasting ecomorphological signals in carnivoran carnassial teeth.pdf]
Preview
Text
Decoupling geometry and topography reveals contrasting ecomorphological signals in carnivoran carnassial teeth.pdf - Published Version
Available under License Creative Commons Attribution.

Download (3MB) | Preview

Abstract

The lower carnassial tooth (m1) is a key innovation underlying the ecological diversification of Carnivora. However, their exceptionally diverse phenotypes result from both functional adaptation and phylogenetic inertia which challenges ecomorphological inferences. We investigate patterns of morphological convergence in the carnassial teeth of 142 extant carnivoran species spanning all terrestrial families and major dietary strategies. We compare the performance of occlusal topographic metrics (Relief Index, Dirichlet Normal Energy, and Orientation Patch Count rotated) and high-density three-dimensional geometric morphometrics (HD3DGM) in distinguishing ecomorphological signal at high taxonomic level, a key element of large-scale diversity analyses. Our results show that HD3DGM recovers a stronger and more consistent dietary signal than topographic metrics, particularly across dissimilar morphologies and at higher taxonomic levels. Within omnivory, insectivory and frugivory, species sharing the same dietary strategies exhibit clear patterns consistent with morphological convergence in the geometric data, while it is only true for frugivory when using topographic metrics. We show that many-to-one topography behaviour weakens the quality of ecomorphological inference at higher taxonomic scales. Our results reframe the context in which each method is most appropriately applied.

Item Type: Article
Uncontrolled Keywords: diet; carnivora; geometric morphometrics; topography; carnassial teeth; convergence; carnassial teeth; carnivora; convergence; diet; geometric morphometrics; topography; Animals; Tooth; Carnivora; Phylogeny; Diet; Biological Evolution; Feeding Behavior; 37 Earth Sciences; 31 Biological Sciences; 3103 Ecology; 06 Biological Sciences; 07 Agricultural and Veterinary Sciences; 11 Medical and Health Sciences; 30 Agricultural, veterinary and food sciences; 31 Biological sciences; 41 Environmental sciences
Subjects: G Geography. Anthropology. Recreation > GE Environmental Sciences
Q Science > QL Zoology
Divisions: Biological and Environmental Sciences (from Sep 19)
Publisher: The Royal Society
Date of acceptance: 16 June 2026
Date of first compliant Open Access: 20 August 2026
Date Deposited: 20 Aug 2026 14:26
Last Modified: 20 Aug 2026 14:26
DOI or ID number: 10.1098/rspb.2026.0400
Editors: B Team, TP, Manera, JL and Rowe, L
URI: https://researchonline.ljmu.ac.uk/id/eprint/29168
View Item View Item