Literature DB >> 35713403

Convergent mosaic brain evolution is associated with the evolution of novel electrosensory systems in teleost fishes.

Erika L Schumacher1, Bruce A Carlson1.   

Abstract

Brain region size generally scales allometrically with brain size, but mosaic shifts in brain region size independent of brain size have been found in several lineages and may be related to the evolution of behavioral novelty. African weakly electric fishes (Mormyroidea) evolved a mosaically enlarged cerebellum and hindbrain, yet the relationship to their behaviorally novel electrosensory system remains unclear. We addressed this by studying South American weakly electric fishes (Gymnotiformes) and weakly electric catfishes (Synodontis spp.), which evolved varying aspects of electrosensory systems, independent of mormyroids. If the mormyroid mosaic increases are related to evolving an electrosensory system, we should find similar mosaic shifts in gymnotiforms and Synodontis. Using micro-computed tomography scans, we quantified brain region scaling for multiple electrogenic, electroreceptive, and non-electrosensing species. We found mosaic increases in cerebellum in all three electrogenic lineages relative to non-electric lineages and mosaic increases in torus semicircularis and hindbrain associated with the evolution of electrogenesis and electroreceptor type. These results show that evolving novel electrosensory systems is repeatedly and independently associated with changes in the sizes of individual major brain regions independent of brain size, suggesting that selection can impact structural brain composition to favor specific regions involved in novel behaviors.
© 2022, Schumacher and Carlson.

Entities:  

Keywords:  behavioral novelty; electric organ discharge; evolutionary biology; gymnotiformes; key innovation; mormyroidea; neuroscience; weakly electric fish

Mesh:

Year:  2022        PMID: 35713403      PMCID: PMC9333993          DOI: 10.7554/eLife.74159

Source DB:  PubMed          Journal:  Elife        ISSN: 2050-084X            Impact factor:   8.713


  65 in total

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Authors:  Daniel T Ksepka; Amy M Balanoff; N Adam Smith; Gabriel S Bever; Bhart-Anjan S Bhullar; Estelle Bourdon; Edward L Braun; J Gordon Burleigh; Julia A Clarke; Matthew W Colbert; Jeremy R Corfield; Federico J Degrange; Vanesa L De Pietri; Catherine M Early; Daniel J Field; Paul M Gignac; Maria Eugenia Leone Gold; Rebecca T Kimball; Soichiro Kawabe; Louis Lefebvre; Jesús Marugán-Lobón; Carrie S Mongle; Ashley Morhardt; Mark A Norell; Ryan C Ridgely; Ryan S Rothman; R Paul Scofield; Claudia P Tambussi; Christopher R Torres; Marcel van Tuinen; Stig A Walsh; Akinobu Watanabe; Lawrence M Witmer; Alexandra K Wright; Lindsay E Zanno; Erich D Jarvis; Jeroen B Smaers
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Authors:  Lucie Marhounová; Alexander Kotrschal; Kristina Kverková; Niclas Kolm; Pavel Němec
Journal:  Evolution       Date:  2019-08-01       Impact factor: 3.694

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  1 in total

1.  Convergent mosaic brain evolution is associated with the evolution of novel electrosensory systems in teleost fishes.

Authors:  Erika L Schumacher; Bruce A Carlson
Journal:  Elife       Date:  2022-06-17       Impact factor: 8.713

  1 in total

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