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Evidence for Concerted and Mosaic Brain Evolution in Dragon Lizards

dc.contributor.authorHoops, Daniel
dc.contributor.authorVidal-Garcia, Marta
dc.contributor.authorUllmann, J. F. P.
dc.contributor.authorJanke, A. L.
dc.contributor.authorStait-Gardner, Timothy
dc.contributor.authorDuchene, D. A.
dc.contributor.authorPrice, William Sydney
dc.contributor.authorWhiting, Martin J.
dc.contributor.authorKeogh, J. Scott
dc.date.accessioned2019-04-15T00:49:39Z
dc.date.issued2017-09-05
dc.date.updated2019-03-12T07:27:32Z
dc.description.abstractThe brain plays a critical role in a wide variety of functions including behaviour, perception, motor control, and homeostatic maintenance. Each function can undergo different selective pressures over the course of evolution, and as selection acts on the outputs of brain function, it necessarily alters the structure of the brain. Two models have been proposed to explain the evolutionary patterns observed in brain morphology. The concerted brain evolution model posits that the brain evolves as a single unit and the evolution of different brain regions are coordinated. The mosaic brain evolution model posits that brain regions evolve independently of each other. It is now understood that both models are responsible for driving changes in brain morphology; however, which factors favour concerted or mosaic brain evolution is unclear. Here, we examined the volumes of the 6 major neural subdivisions across 14 species of the agamid lizard genus Ctenophorus (dragons). These species have diverged multiple times in behaviour, ecology, and body morphology, affording a unique opportunity to test neuroevolutionary models across species. We assigned each species to an ecomorph based on habitat use and refuge type, then used MRI to measure total and regional brain volume. We found evidence for both mosaic and concerted brain evolution in dragons: concerted brain evolution with respect to body size, and mosaic brain evolution with respect to ecomorph. Specifically, all brain subdivisions increase in volume relative to body size, yet the tectum and rhombencephalon also show opposite patterns of evolution with respect to ecomorph. Therefore, we find that both models of evolution are occurring simultaneously in the same structures in dragons, but are only detectable when examining particular drivers of selection. We show that the answer to the question of whether concerted or mosaic brain evolution is detected in a system can depend more on the type of selection measured than on the clade of animals studied.en_AU
dc.description.sponsorshipThis work was supported by grants to D.H. from the National Science and Engineering Council of Canada, The Australian National University, and The National Imaging Facility of Australia; and by grants to M.J.W. and J.S.K. from the Australian Research Council.en_AU
dc.format.extent13 pagesen_AU
dc.format.mimetypeapplication/pdfen_AU
dc.identifier.issn0006-8977en_AU
dc.identifier.urihttp://hdl.handle.net/1885/159631
dc.language.isoen_AUen_AU
dc.provenancehttp://sherpa.mimas.ac.uk/romeo/issn/0006-8977/ Author can archive pre-print (ie pre-refereeing). author can archive post-print (ie final draft post-refereeing) with a 12 months embargo period (Sherpa/Romeo as of 15/4/2019)en_AU
dc.publisherS Karger AGen_AU
dc.rights© 2017 S. Karger AG, Baselen_AU
dc.sourceBrain, Behavior and Evolutionen_AU
dc.subjectTelencephalonen_AU
dc.subjectDiencephalonen_AU
dc.subjectMesencephalonen_AU
dc.subjectOptic tectumen_AU
dc.subjectTegmentumen_AU
dc.subjectRhombencephalonen_AU
dc.subjectCerebellumen_AU
dc.subjectMagnetic resonance imagingen_AU
dc.subjectCognitionen_AU
dc.subjectReptileen_AU
dc.subjectLizarden_AU
dc.subjectConcerted evolutionen_AU
dc.subjectMosaic evolutionen_AU
dc.subjectEcomorphen_AU
dc.titleEvidence for Concerted and Mosaic Brain Evolution in Dragon Lizardsen_AU
dc.typeJournal articleen_AU
dcterms.dateAccepted2017-06-15
local.contributor.affiliationHoops, Daniel, College of Science, The Australian National Universityen_AU
local.contributor.affiliationVidal-Garcia, Marta, College of Science, The Australian National Universityen_AU
local.contributor.affiliationUllmann, J.F.P., University of Queenslanden_AU
local.contributor.affiliationJanke, A.L., University of Queenslanden_AU
local.contributor.affiliationStait-Gardner, Timothy, University of Western Sydneyen_AU
local.contributor.affiliationDuchene, D. A., University of Sydneyen_AU
local.contributor.affiliationPrice, William Sydney, University of Western Sydneyen_AU
local.contributor.affiliationWhiting, Martin J., Macquarie Universityen_AU
local.contributor.affiliationKeogh, J Scott, College of Science, The Australian National Universityen_AU
local.contributor.authoruidHoops, Daniel, u4917617en_AU
local.contributor.authoruidVidal-Garcia, Marta, u5041189en_AU
local.contributor.authoruidKeogh, J Scott, u9807405en_AU
local.description.embargo2037-12-31
local.description.notesImported from ARIESen_AU
local.identifier.absfor060399 - Evolutionary Biology not elsewhere classifieden_AU
local.identifier.absfor060309 - Phylogeny and Comparative Analysisen_AU
local.identifier.absfor060303 - Biological Adaptationen_AU
local.identifier.absseo960899 - Flora, Fauna and Biodiversity of environments not elsewhere classifieden_AU
local.identifier.ariespublicationu4351680xPUB80en_AU
local.identifier.doi10.1159/000478738en_AU
local.identifier.essn1421-9743en_AU
local.identifier.scopusID2-s2.0-85029002604
local.identifier.thomsonIDMEDLINE:28869944
local.publisher.urlhttps://www.karger.com/en_AU
local.type.statusPublished Versionen_AU

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