Literature DB >> 23015428

Ionic current correlations underlie the global tuning of large numbers of neuronal activity attributes.

Shunbing Zhao1, Jorge Golowasch.   

Abstract

Ionic conductances in identified neurons are highly variable. This poses the crucial question of how such neurons can produce stable activity. Coexpression of ionic currents has been observed in an increasing number of neurons in different systems, suggesting that the coregulation of ionic channel expression, by thus linking their variability, may enable neurons to maintain relatively constant neuronal activity as suggested by a number of recent theoretical studies. We examine this hypothesis experimentally using the voltage- and dynamic-clamp techniques to first measure and then modify the ionic conductance levels of three currents in identified neurons of the crab pyloric network. We quantify activity by measuring 10 different attributes (oscillation period, spiking frequency, etc.), and find linear, positive and negative relationships between conductance pairs and triplets that can enable pyloric neurons to maintain activity attributes invariant. Consistent with experimental observations, some of the features most tightly regulated appear to be phase relationships of bursting activity. We conclude that covariation (and probably a tightly controlled coregulation) of ionic conductances can help neurons maintain certain attributes of neuronal activity invariant while at the same time allowing conductances to change over wide ranges in response to internal or environmental inputs and perturbations. Our results also show that neurons can tune neuronal activity globally via coordinate expression of ion currents.

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Year:  2012        PMID: 23015428      PMCID: PMC3541048          DOI: 10.1523/JNEUROSCI.6500-11.2012

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


  35 in total

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3.  Synaptic dynamics do not determine proper phase of activity in a central pattern generator.

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Journal:  Neural Comput       Date:  2005-05       Impact factor: 2.026

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  28 in total

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5.  Ionic Current Variability and Functional Stability in the Nervous System.

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7.  Genetic perturbations suggest a role of the resting potential in regulating the expression of the ion channels of the KCNA and HCN families in octopus cells of the ventral cochlear nucleus.

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8.  Dynamic compensation mechanism gives rise to period and duty-cycle level sets in oscillatory neuronal models.

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Review 9.  Consequences of degeneracy in network function.

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Review 10.  The complexity of small circuits: the stomatogastric nervous system.

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