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      Dendritic Hyperpolarization-Activated Currents Modify the Integrative Properties of Hippocampal CA1 Pyramidal Neurons

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          Abstract

          Step hyperpolarizations evoked slowly activating, noninactivating, and slowly deactivating inward currents from membrane patches recorded in the cell-attached patch configuration from the soma and apical dendrites of hippocampal CA1 pyramidal neurons. The density of these hyperpolarization-activated currents ( I h) increased over sixfold from soma to distal dendrites. Activation curves demonstrate that a significant fraction of I h channels is active near rest and that the range is hyperpolarized relatively more in the distal dendrites. I h activation and deactivation kinetics are voltage-and temperature-dependent, with time constants of activation and deactivation decreasing with hyperpolarization and depolarization, respectively. I h demonstrated a mixed Na +–K + conductance and was sensitive to low concentrations of external CsCl. Dual whole-cell recordings revealed regional differences in input resistance ( R in) and membrane polarization rates (τ mem) across the somatodendritic axis that are attributable to the spatial gradient of I hchannels. As a result of these membrane effects the propagation of subthreshold voltage transients is directionally specific. The elevated dendritic I h density decreases EPSP amplitude and duration and reduces the time window over which temporal summation takes place. The backpropagation of action potentials into the dendritic arborization was impacted only slightly by dendritic I h, with the most consistent effect being a decrease in dendritic action potential duration and an increase in afterhyperpolarization. Overall, I h acts to dampen dendritic excitability, but its largest impact is on the subthreshold range of membrane potentials where the integration of inhibitory and excitatory synaptic inputs takes place.

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          Author and article information

          Journal
          J Neurosci
          J. Neurosci
          jneuro
          jneurosci
          J. Neurosci
          The Journal of Neuroscience
          Society for Neuroscience
          0270-6474
          1529-2401
          1 October 1998
          : 18
          : 19
          : 7613-7624
          Affiliations
          [ 1 ]Neuroscience Center, Louisiana State University Medical Center, New Orleans, Louisiana 70112
          Article
          PMC6793032 PMC6793032 6793032 2351
          10.1523/JNEUROSCI.18-19-07613.1998
          6793032
          9742133
          a39dbbc9-5ebc-4e6e-a170-4761e95e6422
          Copyright © 1998 Society for Neuroscience
          History
          : 15 April 1998
          : 9 July 1998
          : 10 July 1998
          Categories
          Article
          Custom metadata
          5.00

          hyperpolarization-activated current,dendrite,CA1 pyramidal neuron,synaptic integration,hippocampus,action potential backpropagation

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