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February 19, 2026Evolution0 citationsOpen Access

The land-to-water transition impacts brain shape in caniform carnivorans

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TKThomas M B KirkwoodSSSusanne ShultzMSMary Silcox

Key Points

  • This research aims to assess the role of locomotor habitat in shaping brain morphology among caniform carnivorans.
  • Evaluated endocranial morphology in 73 caniform species
  • Used high-density 3D geometric morphometrics
  • Applied principal component analysis and phylogenetic comparative methods
  • Significant impact of land-to-water transition on brain shape in caniforms
  • Effects are more pronounced in pinnipeds than in mustelids and ursids
  • Aquatic caniforms show expanded cerebra and reduced olfactory bulbs and paleocortices

Abstract

Abstract Mammals exhibit remarkable diversity in brain size and morphology, resulting from numerous ecological radiations throughout the Cenozoic. Although previous studies have demonstrated the influence of phylogeny, allometry, and various ecological variables on endocranial morphology in certain mammalian lineages, the extent to which locomotor habitat influences brain shape evolution remains unclear. The suborder Caniformia, or “dog-like” carnivorans, is an ecologically diverse clade, containing terrestrial, arboreal, fossorial, and semiaquatic species, each facing a unique set of sensory and motor challenges. Here, we evaluate the impact of phylogeny, allometry, and locomotor habitat on brain shape evolution in caniforms. We examine endocranial morphology in 73 species using high-density 3D geometric morphometrics, principal component analysis and phylogenetic comparative methods. Our findings indicate that the land-to-water transition has a significant impact on endocranial shape across caniforms. This effect is more pronounced in pinnipeds than in other semiaquatic fissipeds, such as mustelids and ursids, likely due to their more derived ecology and greater commitment to aquatic life. Aquatic caniforms tend to exhibit expanded cerebra alongside reduced paleocortices and olfactory bulbs. These morphological changes likely reflect selection pressures acting on both the brain and the surrounding cranial architecture in aquatic environments.

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Cite This Study

Kirkwood et al. (2026) studied this question.

synapsesocial.com/papers/6996a957ecb39a600b3f05fdhttps://doi.org/10.1093/evolut/qpag024
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