Synchrotron tomography of a stem-lizard elucidates early squamate anatomy

Squamates (lizards and snakes) include more than 10,000 living species, descended from an ancestor that diverged more than 240 million years ago from that of their closest living relative, Sphenodon. However, a deficiency of fossil evidence1,2,3,4,5,6,7, combined with serious conflicts between molec...

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Hauptverfasser: Talanda, M, Fernandez, V, Panciroli, E, Evans, SE, Benson, RJ
Format: Journal article
Sprache:English
Veröffentlicht: Nature Research 2022
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author Talanda, M
Fernandez, V
Panciroli, E
Evans, SE
Benson, RJ
author_facet Talanda, M
Fernandez, V
Panciroli, E
Evans, SE
Benson, RJ
author_sort Talanda, M
collection OXFORD
description Squamates (lizards and snakes) include more than 10,000 living species, descended from an ancestor that diverged more than 240 million years ago from that of their closest living relative, Sphenodon. However, a deficiency of fossil evidence1,2,3,4,5,6,7, combined with serious conflicts between molecular and morphological accounts of squamate phylogeny8,9,10,11,12,13 (but see ref. 14), has caused uncertainty about the origins and evolutionary assembly of squamate anatomy. Here we report the near-complete skeleton of a stem squamate, Bellairsia gracilis, from the Middle Jurassic epoch of Scotland, documented using high-resolution synchrotron phase-contrast tomography. Bellairsia shares numerous features of the crown group, including traits related to cranial kinesis (an important functional feature of many extant squamates) and those of the braincase and shoulder girdle. Alongside these derived traits, Bellairsia also retains inferred ancestral features including a pterygoid–vomer contact and the presence of both cervical and dorsal intercentra. Phylogenetic analyses return strong support for Bellairsia as a stem squamate, suggesting that several features that it shares with extant gekkotans are plesiomorphies, consistent with the molecular phylogenetic hypothesis that gekkotans are early-diverging squamates. We also provide confident support of stem squamate affinities for the enigmatic Oculudentavis. Our findings indicate that squamate-like functional features of the suspensorium, braincase and shoulder girdle preceded the origin of their palatal and vertebral traits and indicate the presence of advanced stem squamates as persistent components of terrestrial assemblages up to at least the middle of the Cretaceous period.
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spelling oxford-uuid:f943cfa0-311c-4932-8b20-54c615fc653e2023-04-26T08:36:41ZSynchrotron tomography of a stem-lizard elucidates early squamate anatomyJournal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:f943cfa0-311c-4932-8b20-54c615fc653eEnglishSymplectic ElementsNature Research2022Talanda, MFernandez, VPanciroli, EEvans, SEBenson, RJSquamates (lizards and snakes) include more than 10,000 living species, descended from an ancestor that diverged more than 240 million years ago from that of their closest living relative, Sphenodon. However, a deficiency of fossil evidence1,2,3,4,5,6,7, combined with serious conflicts between molecular and morphological accounts of squamate phylogeny8,9,10,11,12,13 (but see ref. 14), has caused uncertainty about the origins and evolutionary assembly of squamate anatomy. Here we report the near-complete skeleton of a stem squamate, Bellairsia gracilis, from the Middle Jurassic epoch of Scotland, documented using high-resolution synchrotron phase-contrast tomography. Bellairsia shares numerous features of the crown group, including traits related to cranial kinesis (an important functional feature of many extant squamates) and those of the braincase and shoulder girdle. Alongside these derived traits, Bellairsia also retains inferred ancestral features including a pterygoid–vomer contact and the presence of both cervical and dorsal intercentra. Phylogenetic analyses return strong support for Bellairsia as a stem squamate, suggesting that several features that it shares with extant gekkotans are plesiomorphies, consistent with the molecular phylogenetic hypothesis that gekkotans are early-diverging squamates. We also provide confident support of stem squamate affinities for the enigmatic Oculudentavis. Our findings indicate that squamate-like functional features of the suspensorium, braincase and shoulder girdle preceded the origin of their palatal and vertebral traits and indicate the presence of advanced stem squamates as persistent components of terrestrial assemblages up to at least the middle of the Cretaceous period.
spellingShingle Talanda, M
Fernandez, V
Panciroli, E
Evans, SE
Benson, RJ
Synchrotron tomography of a stem-lizard elucidates early squamate anatomy
title Synchrotron tomography of a stem-lizard elucidates early squamate anatomy
title_full Synchrotron tomography of a stem-lizard elucidates early squamate anatomy
title_fullStr Synchrotron tomography of a stem-lizard elucidates early squamate anatomy
title_full_unstemmed Synchrotron tomography of a stem-lizard elucidates early squamate anatomy
title_short Synchrotron tomography of a stem-lizard elucidates early squamate anatomy
title_sort synchrotron tomography of a stem lizard elucidates early squamate anatomy
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