Literature DB >> 8876249

Modeling back propagating action potential in weakly excitable dendrites of neocortical pyramidal cells.

M Rapp1, Y Yarom, I Segev.   

Abstract

Simultaneous recordings from the soma and apical dendrite of layer V neocortical pyramidal cells of young rats show that, for any location of current input, an evoked action potential (AP) always starts at the axon and then propagates actively, but decrementally, backward into the dendrites. This back-propagating AP is supported by a low density (-gNa = approximately 4 mS/cm2) of rapidly inactivating voltage-dependent Na+ channels in the soma and the apical dendrite. Investigation of detailed, biophysically constrained, models of reconstructed pyramidal cells shows the following. (i) The initiation of the AP first in the axon cannot be explained solely by morphological considerations; the axon must be more excitable than the soma and dendrites. (ii) The minimal Na+ channel density in the axon that fully accounts for the experimental results is about 20-times that of the soma. If -gNa in the axon hillock and initial segment is the same as in the soma [as recently suggested by Colbert and Johnston [Colbert, C. M. & Johnston, D. (1995) Soc. Neurosci. Abstr. 21, 684.2]], then -gNa in the more distal axonal regions is required to be about 40-times that of the soma. (iii) A backward propagating AP in weakly excitable dendrites can be modulated in a graded manner by background synaptic activity. The functional role of weakly excitable dendrites and a more excitable axon for forward synaptic integration and for backward, global, communication between the axon and the dendrites is discussed.

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Year:  1996        PMID: 8876249      PMCID: PMC38170          DOI: 10.1073/pnas.93.21.11985

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  37 in total

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9.  Dendritic spines as basic functional units of neuronal integration.

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  35 in total

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2.  Membrane potential bistability is controlled by the hyperpolarization-activated current I(H) in rat cerebellar Purkinje neurons in vitro.

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3.  Electrical interactions via the extracellular potential near cell bodies.

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4.  Active dendrites and spike propagation in multi-compartment models of oriens-lacunosum/moleculare hippocampal interneurons.

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5.  Burst generation in rat pyramidal neurones by regenerative potentials elicited in a restricted part of the basilar dendritic tree.

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Review 6.  Dendritic integration: 60 years of progress.

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7.  Encoding and decoding of dendritic excitation during active states in pyramidal neurons.

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8.  Dynamics of action potential backpropagation in basal dendrites of prefrontal cortical pyramidal neurons.

Authors:  Wen-Liang Zhou; Ping Yan; Joseph P Wuskell; Leslie M Loew; Srdjan D Antic
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9.  Quantitative assessment of the distributions of membrane conductances involved in action potential backpropagation along basal dendrites.

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10.  Mechanisms underlying subunit independence in pyramidal neuron dendrites.

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Journal:  Proc Natl Acad Sci U S A       Date:  2013-12-19       Impact factor: 11.205

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