Literature DB >> 16107588

Dendritic branch typing and spine expression patterns in cortical nonpyramidal cells.

Yasuo Kawaguchi1, Fuyuki Karube, Yoshiyuki Kubota.   

Abstract

To understand the dendritic differentiation in various types of cortical nonpyramidal cells, we analyzed quantitatively their dendritic branching and spine expression. The dendritic internode and interspine interval obeyed exponential distributions with type-specific decay constants. The initial branching pattern, internode interval and spine density at the light microscopic level divided nonpyramidal cells into three dendritic types, correlated with axonal, neurochemical and firing types. The initial branching pattern determined the overall vertical spread of dendrites. Basket cell subtypes with different firing and chemical expression patterns were distinct in the vertical and horizontal spatial spread, providing diverse input territories. Internode densities of dendritic spines, as well as those of axonal synaptic boutons, did not correlate with the tortuosities and intervals, suggesting a tendency to distribute synapses homogeneously over the arbor. Dendritic spines identified at the electron microscopic level were different in length and shape among subtypes. Although the density was lower than that of pyramidal cells, spines themselves were also composed of several morphological types such as mushroom and multihead ones, which were expressed differentially among subtypes. Correlation of dendritic branching characteristics with differences in spine structure suggests distinct ways to receive specific inputs among the subtypes.

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Year:  2005        PMID: 16107588     DOI: 10.1093/cercor/bhj015

Source DB:  PubMed          Journal:  Cereb Cortex        ISSN: 1047-3211            Impact factor:   5.357


  51 in total

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4.  Maximization of the connectivity repertoire as a statistical principle governing the shapes of dendritic arbors.

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5.  Cortical inhibitory cell types differentially form intralaminar and interlaminar subnetworks with excitatory neurons.

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7.  Spine formation and maturation in the developing rat auditory cortex.

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9.  Rapid, learning-induced inhibitory synaptogenesis in murine barrel field.

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10.  Differing effects of intracortical circuits on plasticity.

Authors:  J T H Teo; C Terranova; O Swayne; R J Greenwood; J C Rothwell
Journal:  Exp Brain Res       Date:  2008-12-02       Impact factor: 1.972

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