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Research ArticleResearch Article: New Research, Sensory and Motor Systems

Spatiotemporal Transition in the Role of Synaptic Inhibition to the Tail Beat Rhythm of Developing Larval Zebrafish

Yann Roussel, Melissa Paradis, Stephanie F. Gaudreau, Ben W. Lindsey and Tuan V. Bui
eNeuro 31 January 2020, 7 (1) ENEURO.0508-18.2020; https://doi.org/10.1523/ENEURO.0508-18.2020
Yann Roussel
1Brain and Mind Research Institute, Centre for Neural Dynamics, Department of Biology, University of Ottawa, Ottawa K1N 6N5, Canada
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Melissa Paradis
1Brain and Mind Research Institute, Centre for Neural Dynamics, Department of Biology, University of Ottawa, Ottawa K1N 6N5, Canada
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Stephanie F. Gaudreau
1Brain and Mind Research Institute, Centre for Neural Dynamics, Department of Biology, University of Ottawa, Ottawa K1N 6N5, Canada
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Ben W. Lindsey
1Brain and Mind Research Institute, Centre for Neural Dynamics, Department of Biology, University of Ottawa, Ottawa K1N 6N5, Canada
2Rady Faculty of Health Sciences, Max Rady College of Medicine, Department of Human Anatomy and Cell Science, University of Manitoba, Winnipeg R3E 0J9, Canada
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Tuan V. Bui
1Brain and Mind Research Institute, Centre for Neural Dynamics, Department of Biology, University of Ottawa, Ottawa K1N 6N5, Canada
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eneuro: 7 (1)
eNeuro
Vol. 7, Issue 1
January/February 2020
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Spatiotemporal Transition in the Role of Synaptic Inhibition to the Tail Beat Rhythm of Developing Larval Zebrafish
Yann Roussel, Melissa Paradis, Stephanie F. Gaudreau, Ben W. Lindsey, Tuan V. Bui
eNeuro 31 January 2020, 7 (1) ENEURO.0508-18.2020; DOI: 10.1523/ENEURO.0508-18.2020

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Spatiotemporal Transition in the Role of Synaptic Inhibition to the Tail Beat Rhythm of Developing Larval Zebrafish
Yann Roussel, Melissa Paradis, Stephanie F. Gaudreau, Ben W. Lindsey, Tuan V. Bui
eNeuro 31 January 2020, 7 (1) ENEURO.0508-18.2020; DOI: 10.1523/ENEURO.0508-18.2020
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Keywords

  • motor maturation
  • network oscillators
  • spinal locomotor circuits
  • swimming
  • synaptic inhibition
  • zebrafish

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Research Article: New Research

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Sensory and Motor Systems

  • Sensory-cell population integrity required to preserve minimal and normal vestibulo-ocular reflexes reveals the critical role of type I hair cells in canal- and otolith-specific functions
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