4.5 Article

An impaired neocortical Ih is associated with enhanced excitability and absence epilepsy

Journal

EUROPEAN JOURNAL OF NEUROSCIENCE
Volume 19, Issue 11, Pages 3048-3058

Publisher

WILEY
DOI: 10.1111/j.0953-816X.2004.03392.x

Keywords

burst discharge; epilepsy; HCN1; hyperpolarization activated cyclic nucleotide gated current; patch clamp; postsynaptic potentials; sharp microelectrode recording; ZD7288

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Neuronal subthreshold excitability and firing behaviour are markedly influenced by the activation and deactivation of the somato-dendritic hyperpolarization-activated cation current (I-h). Here, we evaluated possible contributions of I-h to hyperexcitability in an animal model of absence seizures (WAG/Rij rats). We investigated pyramidal neurons of the somatosensory neocortex, the site of generation of spike-wave discharges. I-h-mediated functions in neurons from WAG/Rij rats, Wistar rats (sharing the same genetic background with WAG/Rij, but less epilepsy-prone) and ACI rats (an inbred strain, virtually free of seizures) were compared. We complemented whole-cell recordings from layer 2-3 pyramidal neurons with immunohistochemistry, Western blot and RT-PCR analysis of the h-channel subunits HCN1-4. The fast component of I-h activation in WAG/Rij neurons was significantly reduced (50% reduction in the h-current density) and four times slower than in neurons from nonepileptic Wistar or ACI rats. The results showing decreases in currents corresponded to a 34% reduction in HCN1 protein in the WAG/Rij compared to the Wistar neocortex, but HCN1 mRNA showed stable expression. The other three I-h subunit mRNAs and proteins (HCN2-4) were not affected. The alterations in I-h magnitude and kinetics of gating in WAG/Rij neurons may contribute to augmented excitatory postsynaptic potentials, the increase in their temporal summation and the facilitation of burst firing of these neurons because each of these effects could be mimicked by the selective I-h antagonist ZD 7288. We suggest that the deficit in I-h-mediated functions may contribute to the development and onset of spontaneously occurring hyperexcitability in a rat model of absence seizures.

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