Abstract
We tested the hypothesis that pacemaker neurons generate breathing rhythm in mammals. We monitored respiratory-related motor nerve rhythm in neonatal rodent slice preparations. Blockade of the persistent sodium current (I(NaP)), which was postulated to underlie voltage-dependent bursting in respiratory pacemaker neurons, with riluzole (< or =200 microM) did not alter the frequency of respiratory-related motor output. Yet, in every pacemaker neuron recorded (50/50), bursting was abolished at much lower concentrations of riluzole (< or =20 microM). Thus, eliminating the pacemaker population (our statistics confirm that this population is reduced at least 94%, p < 0.05) does not affect respiratory rhythm. These results suggest that voltage-dependent bursting in pacemaker neurons is not essential for respiratory rhythmogenesis, which may instead be an emergent network property.
Publication types
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Research Support, Non-U.S. Gov't
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Research Support, U.S. Gov't, P.H.S.
MeSH terms
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Action Potentials / drug effects
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Action Potentials / physiology
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Animals
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Animals, Newborn
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Biological Clocks / drug effects
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Biological Clocks / physiology
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Cell Differentiation / drug effects
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Cell Differentiation / physiology
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Cell Membrane / drug effects
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Cell Membrane / physiology
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Dose-Response Relationship, Drug
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Efferent Pathways / drug effects
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Efferent Pathways / growth & development*
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Efferent Pathways / physiology
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Excitatory Amino Acid Antagonists / pharmacology
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Hypoglossal Nerve / drug effects
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Hypoglossal Nerve / physiology
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Medulla Oblongata / drug effects
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Medulla Oblongata / growth & development*
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Medulla Oblongata / physiology
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Mice
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Nerve Net / drug effects
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Nerve Net / growth & development*
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Nerve Net / physiology
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Neurons / drug effects
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Neurons / physiology*
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Organ Culture Techniques
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Periodicity
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Rats
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Respiration / drug effects*
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Respiratory Center / drug effects
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Respiratory Center / growth & development*
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Respiratory Center / physiology
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Riluzole / pharmacology
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Sodium Channels / drug effects
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Sodium Channels / physiology
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Spinal Cord / drug effects
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Spinal Cord / growth & development*
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Spinal Cord / physiology
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Synaptic Transmission / drug effects
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Synaptic Transmission / physiology
Substances
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Excitatory Amino Acid Antagonists
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Sodium Channels
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Riluzole