Literature DB >> 15917456

Sodium currents in medullary neurons isolated from the pre-Bötzinger complex region.

Krzysztof Ptak1, Greer G Zummo, George F Alheid, Tatiana Tkatch, D James Surmeier, Donald R McCrimmon.   

Abstract

The pre-Bötzinger complex (preBötC) in the ventrolateral medulla contains interneurons important for respiratory rhythm generation. Voltage-dependent sodium channels mediate transient current (I(NaT)), underlying action potentials, and persistent current (I(NaP)), contributing to repetitive firing, pacemaker properties, and the amplification of synaptic inputs. Voltage-clamp studies of the biophysical properties of these sodium currents were conducted on acutely dissociated preBötC region neurons. Reverse transcription-PCR demonstrated the presence of mRNA for Nav1.1, Nav1.2, and Nav1.6 alpha-subunits in individual neurons. A TTX-sensitive I(NaP) was evoked in all tested neurons by ramp depolarization from -80 to 0 mV. Including a constant in the Boltzmann equation for inactivation by estimating the steady-state fraction of Na+ channels available for inactivation allowed prediction of a window current that did not decay to 0 at voltages positive to -20 mV and closely matched the measured I(NaP). Riluzole (3 microM), a putative I(NaP) antagonist, reduced both I(NaP) and I(NaT) and produced a hyperpolarizing shift in the voltage dependence of steady-state inactivation. The latter decreased the predicted window current by an amount equivalent to the decrease in I(NaP). Riluzole also decreased the inactivation time constant at potentials in which the peak window/persistent currents are generated. Together, these findings imply that I(NaP) and I(NaT) arise from the same channels and that a simple modification of the Hodgkin-Huxley model can satisfactorily account for both currents. In the rostral ventral respiratory group (immediately caudal to preBötC), I(NaP) was also detected, but peak conductance, current density, and input resistance were smaller than in preBötC region cells.

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Year:  2005        PMID: 15917456      PMCID: PMC6724824          DOI: 10.1523/JNEUROSCI.4238-04.2005

Source DB:  PubMed          Journal:  J Neurosci        ISSN: 0270-6474            Impact factor:   6.167


  65 in total

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Authors:  R J Butera; J Rinzel; J C Smith
Journal:  J Neurophysiol       Date:  1999-07       Impact factor: 2.714

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Authors:  R J Butera; J Rinzel; J C Smith
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Review 7.  Respiratory rhythm generation in neonatal and adult mammals: the hybrid pacemaker-network model.

Authors:  J C Smith; R J Butera; N Koshiya; C Del Negro; C G Wilson; S M Johnson
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8.  Adjustable amplification of synaptic input in the dendrites of spinal motoneurons in vivo.

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  34 in total

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Review 6.  Regulation of synaptic transmission by ambient extracellular glutamate.

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Review 7.  Looking for inspiration: new perspectives on respiratory rhythm.

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