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Evolutionary convergence of a neural mechanism in the cavefish lateral line system

View ORCID ProfileElias T. Lunsford, Alexandra Paz, View ORCID ProfileAlex C. Keene, View ORCID ProfileJames C. Liao
doi: https://doi.org/10.1101/2022.01.26.477913
Elias T. Lunsford
1The Whitney Laboratory for Marine Bioscience, Department of Biology, University of Florida, Saint Augustine, FL USA 32080
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Alexandra Paz
2Department of Biological Sciences, Florida Atlantic University, Jupiter, FL USA 33458
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Alex C. Keene
2Department of Biological Sciences, Florida Atlantic University, Jupiter, FL USA 33458
3Department of Biology Texas A&M University, College Station, TX USA 77843
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James C. Liao
1The Whitney Laboratory for Marine Bioscience, Department of Biology, University of Florida, Saint Augustine, FL USA 32080
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  • For correspondence: [email protected]
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Abstract

Animals can evolve dramatic sensory functions in response to environmental constraints, but little is known about the neural mechanisms underlying these changes. The Mexican tetra, Astyanax mexicanus, is a leading model to study genetic, behavioral, and physiological evolution by comparing eyed surface populations and blind cave populations. We compared neurophysiological responses of posterior lateral line afferent neurons and motor neurons across A. mexicanus populations to reveal how shifts in sensory function may shape behavioral diversity. These studies indicate differences in intrinsic afferent signaling and gain control across populations. Elevated endogenous afferent activity identified a lower response threshold in the lateral line of blind cavefish relative to surface fish. We next measured the effect of inhibitory corollary discharges from hindbrain efferent neurons onto afferents during locomotion. We discovered that three independently-derived cavefish populations have evolved persistent afferent activity during locomotion, suggesting for the first time that regression of the efferent system can be an evolutionary mechanism for neural adaptation of a vertebrate sensory system.

Competing Interest Statement

The authors have declared no competing interest.

Footnotes

  • Phone: 904-201-8404, Email: jliao{at}whitney.ufl.edu

  • Conflict of Interest: The authors declare no competing financial interests.

Copyright 
The copyright holder for this preprint is the author/funder, who has granted bioRxiv a license to display the preprint in perpetuity. It is made available under a CC-BY-ND 4.0 International license.
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Posted January 28, 2022.
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Evolutionary convergence of a neural mechanism in the cavefish lateral line system
Elias T. Lunsford, Alexandra Paz, Alex C. Keene, James C. Liao
bioRxiv 2022.01.26.477913; doi: https://doi.org/10.1101/2022.01.26.477913
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Evolutionary convergence of a neural mechanism in the cavefish lateral line system
Elias T. Lunsford, Alexandra Paz, Alex C. Keene, James C. Liao
bioRxiv 2022.01.26.477913; doi: https://doi.org/10.1101/2022.01.26.477913

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