Skull morphology of the extinct Tasmanian tiger suggests unique biting style

The recently extinct thylacine (Tasmanian tiger) was the largest modern marsupial predator. It is considered a classic example of evolutionary convergence due to striking similarities with placental canids (e.g., foxes and wolves), particularly in the skull, despite ~160 million years of evolutionary separation. However, we here present geometric and linear morphometric evidence that the thylacine's cranial form arises from a mosaic of traits not represented among canids or other living mammalian carnivores. Thylacines had disproportionately large heads, tall and gracile snouts with a flared canine region, and conspicuously large infraorbital foramina. Many of these traits suggest adaptations to fast, high-impact snapping behaviour in prey capture, as proposed for several living and extinct predatorial vertebrates with similar trait combinations. The thylacine's cranial function may therefore not be inferable from observation of living mammals. However, genomic progress presents new opportunities for future insights into the evolution and development of thylacine cranial adaptation.

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Publication Details

Journal
Nature Communications
Published
2026-08-31
DOI
https://doi.org/10.1038/s41467-026-76614-0
Citations
1
Primary Topic
Evolution and Paleontology Studies
Type
article
Field-Weighted Citation Impact
11.76

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article

Skull morphology of the extinct Tasmanian tiger suggests unique biting style

Andrew J. Pask, Douglass Rovinsky, Axel H. Newton, Vera Weisbecker
1 citations
Nature Communications
Evolution and Paleontology Studies
11.76
article

Skull morphology of the extinct Tasmanian tiger suggests unique biting style

Andrew J. Pask, Douglass Rovinsky, Axel H. Newton, Vera Weisbecker
article en
1 citations

Abstract

The recently extinct thylacine (Tasmanian tiger) was the largest modern marsupial predator. It is considered a classic example of evolutionary convergence due to striking similarities with placental canids (e.g., foxes and wolves), particularly in the skull, despite ~160 million years of evolutionary separation. However, we here present geometric and linear morphometric evidence that the thylacine's cranial form arises from a mosaic of traits not represented among canids or other living mammalian carnivores. Thylacines had disproportionately large heads, tall and gracile snouts with a flared canine region, and conspicuously large infraorbital foramina. Many of these traits suggest adaptations to fast, high-impact snapping behaviour in prey capture, as proposed for several living and extinct predatorial vertebrates with similar trait combinations. The thylacine's cranial function may therefore not be inferable from observation of living mammals. However, genomic progress presents new opportunities for future insights into the evolution and development of thylacine cranial adaptation.

Nature CommunicationsVol. 17(1)
Australian Museum (AU), Australian Research Council (AU), The University of Melbourne (AU), Flinders University (AU)
Yale University, University of Cambridge, La Trobe University, Flinders University, Australian Research Council
Openalex Percentile: Top 2%
Evolution and Paleontology Studies
11.76
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Skull morphology of the extinct Tasmanian tiger suggests unique biting style — Andrew J. Pask, Douglass Rovinsky, et al. · Nature Communications (2026) | TGRS Research Map | TGRS