Literature DB >> 9261572

Neuronal composition and morphology in layer IV of two vibrissal barrel subfields of rat cortex.

G N Elston1, D V Pow, M B Calford.   

Abstract

The technique of intracellular injection in fixed, flattened slices was used to study neuronal composition and morphology in the postero-medial barrel subfield (PMBSF) and the antero-lateral barrel subfield (ALBSF) in layer IV of rat cortex. The PMBSF and the ALBSF contain the cortical representation of the mystacial and rostral snout vibrissae respectively. Neuronal composition differed between the PMBSF and the ALBSF. Modified pyramidal cells were the most numerous neuronal type in the PMBSF (73.1%), whereas spiny multipolar (stellate) neurons were the most numerous type in the ALBSF (40.9%). Tangential dendritic field areas of modified pyramidal cells and spiny multipolar cells in the barrels of the two barrel subfields were compared. Dendritic field areas of spiny multipolar neurons located in the barrels of the PMBSF and the ALBSF were similar (mean +/- SD; 2.44 +/- 1.83 x 10(4) and 2.88 +/- 1.47 x 10(4) microns2 respectively). Likewise, there was no significant difference in 'basal' dendritic field area of modified pyramidal neurons located in the barrels of the two different barrel subfields (4.63 +/- 1.96 x 10(4) and 4.45 +/- 1.81 x 10(4) microns2 for PMBSF and ALBSF respectively). The mean cross-sectional area of PMBSF barrels (20.5 +/- 5.69 x 10(4) microns2) in which neurons were injected was approximately seven times larger than that of the ALBSF (2.94 +/- 1.46 x 10(4) microns2). Thus, on average, the dendritic territories of these two neuronal classes sample a larger proportion of the cross-sectional area of the barrels in the ALBSF than in the PMBSF. We conclude that the close relationship between basal dendritic field area of supragranular pyramidal neurons and module size, reported in studies of other sensory areas, is not evident in all barrel subfields of the rat.

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Year:  1997        PMID: 9261572     DOI: 10.1093/cercor/7.5.422

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


  13 in total

1.  Cortical integration in the visual system of the macaque monkey: large-scale morphological differences in the pyramidal neurons in the occipital, parietal and temporal lobes.

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3.  Regional specialization in pyramidal cell structure in the limbic cortex of the vervet monkey (Cercopithecus pygerythrus): an intracellular injection study of the anterior and posterior cingulate gyrus.

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4.  Pyramidal cell specialization in the occipitotemporal cortex of the Chacma baboon (Papio ursinus).

Authors:  Guy N Elston; Ruth Benavides-Piccione; Alejandra Elston; Javier DeFelipe; Paul Manger
Journal:  Exp Brain Res       Date:  2005-09-23       Impact factor: 1.972

5.  Dynamics of the development of microvascular reactions in the projection zones of the somatosensory cortex of the brain in rats.

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6.  Dynamic representation of whisker deflection by synaptic potentials in spiny stellate and pyramidal cells in the barrels and septa of layer 4 rat somatosensory cortex.

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7.  Specific cytoarchitectureal changes in hippocampal subareas in daDREAM mice.

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8.  Postnatal development of layer III pyramidal cells in the primary visual, inferior temporal, and prefrontal cortices of the marmoset.

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9.  3D reconstruction and standardization of the rat vibrissal cortex for precise registration of single neuron morphology.

Authors:  Robert Egger; Rajeevan T Narayanan; Moritz Helmstaedter; Christiaan P J de Kock; Marcel Oberlaender
Journal:  PLoS Comput Biol       Date:  2012-12-20       Impact factor: 4.475

10.  Pyramidal cells in V1 of African rodents are bigger, more branched and more spiny than those in primates.

Authors:  Guy N Elston; Paul Manger
Journal:  Front Neuroanat       Date:  2014-02-10       Impact factor: 3.856

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