Literature DB >> 9539128

Periodicity of thalamic synchronized oscillations: the role of Ca2+-mediated upregulation of Ih.

A Lüthi1, D A McCormick.   

Abstract

Thalamocortical networks can generate both normal and abnormal patterns of synchronized network activity, such as spindle waves and spike-and-wave seizures. These periods of synchronized discharge are often separated by a silent, refractory phase of between 5 and 20 s. In vitro investigations have demonstrated that this refractory period is due in large part to the persistent activation of the hyperpolarization-activated cation current Ih in thalamocortical cells. Here, we show that increases in [Ca2+]i due to rebound Ca2+ bursts result in persistent activation of Ih resulting from a positive shift in the activation curve of this current. The dynamical upregulation and persistent activation of Ih is the critical determinant of the time course of the refractory period. These findings demonstrate that periodicity in neural network oscillations may be generated through an interaction between the electrophysiological properties and intracellular signaling pathways of the constituent neurons.

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Year:  1998        PMID: 9539128     DOI: 10.1016/s0896-6273(00)80994-0

Source DB:  PubMed          Journal:  Neuron        ISSN: 0896-6273            Impact factor:   17.173


  71 in total

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4.  Rhythmic dendritic Ca2+ oscillations in thalamocortical neurons during slow non-REM sleep-related activity in vitro.

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Review 6.  Regulation of recombinant and native hyperpolarization-activated cation channels.

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7.  Resonance (approximately 10 Hz) of excitatory networks in motor cortex: effects of voltage-dependent ion channel blockers.

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8.  Functional stabilization of weakened thalamic pacemaker channel regulation in rat absence epilepsy.

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9.  Interaction between neocortical and hippocampal networks via slow oscillations.

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Journal:  Thalamus Relat Syst       Date:  2005-12

Review 10.  Realistic modeling of neurons and networks: towards brain simulation.

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