Effects of Chronic Dopamine D2R Agonist Treatment and Polysialic Acid Depletion on Dendritic Spine Density and Excitatory Neurotransmission in the mPFC of Adult Rats

Dopamine D2 receptors (D2R) in the medial prefrontal cortex (mPFC) are key players in the etiology and therapeutics of schizophrenia. The overactivation of these receptors contributes to mPFC dysfunction. Chronic treatment with D2R agonists modifies the expression of molecules implicated in neuronal...

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Main Authors: Esther Castillo-Gómez, Emilio Varea, José Miguel Blasco-Ibáñez, Carlos Crespo, Juan Nacher
Format: Article
Language:English
Published: Hindawi Limited 2016-01-01
Series:Neural Plasticity
Online Access:http://dx.doi.org/10.1155/2016/1615363
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spelling doaj-c99d51f909ec41c7ac089b68e900bae42020-11-24T22:38:00ZengHindawi LimitedNeural Plasticity2090-59041687-54432016-01-01201610.1155/2016/16153631615363Effects of Chronic Dopamine D2R Agonist Treatment and Polysialic Acid Depletion on Dendritic Spine Density and Excitatory Neurotransmission in the mPFC of Adult RatsEsther Castillo-Gómez0Emilio Varea1José Miguel Blasco-Ibáñez2Carlos Crespo3Juan Nacher4Neurobiology Unit, BIOTECMED, Cell Biology Department, Universitat de València, 46100 Burjassot, SpainNeurobiology Unit, BIOTECMED, Cell Biology Department, Universitat de València, 46100 Burjassot, SpainNeurobiology Unit, BIOTECMED, Cell Biology Department, Universitat de València, 46100 Burjassot, SpainNeurobiology Unit, BIOTECMED, Cell Biology Department, Universitat de València, 46100 Burjassot, SpainNeurobiology Unit, BIOTECMED, Cell Biology Department, Universitat de València, 46100 Burjassot, SpainDopamine D2 receptors (D2R) in the medial prefrontal cortex (mPFC) are key players in the etiology and therapeutics of schizophrenia. The overactivation of these receptors contributes to mPFC dysfunction. Chronic treatment with D2R agonists modifies the expression of molecules implicated in neuronal structural plasticity, synaptic function, and inhibitory neurotransmission, which are also altered in schizophrenia. These changes are dependent on the expression of the polysialylated form of the neural cell adhesion molecule (PSA-NCAM), a plasticity-related molecule, but nothing is known about the effects of D2R and PSA-NCAM on excitatory neurotransmission and the structure of mPFC pyramidal neurons, two additional features affected in schizophrenia. To evaluate these parameters, we have chronically treated adult rats with PPHT (a D2R agonist) after enzymatic removal of PSA with Endo-N. Both treatments decreased spine density in apical dendrites of pyramidal neurons without affecting their inhibitory innervation. Endo-N also reduced the expression of vesicular glutamate transporter-1. These results indicate that D2R and PSA-NCAM are important players in the regulation of the structural plasticity of mPFC excitatory neurons. This is relevant to our understanding of the neurobiological basis of schizophrenia, in which structural alterations of pyramidal neurons and altered expression of D2R and PSA-NCAM have been found.http://dx.doi.org/10.1155/2016/1615363
collection DOAJ
language English
format Article
sources DOAJ
author Esther Castillo-Gómez
Emilio Varea
José Miguel Blasco-Ibáñez
Carlos Crespo
Juan Nacher
spellingShingle Esther Castillo-Gómez
Emilio Varea
José Miguel Blasco-Ibáñez
Carlos Crespo
Juan Nacher
Effects of Chronic Dopamine D2R Agonist Treatment and Polysialic Acid Depletion on Dendritic Spine Density and Excitatory Neurotransmission in the mPFC of Adult Rats
Neural Plasticity
author_facet Esther Castillo-Gómez
Emilio Varea
José Miguel Blasco-Ibáñez
Carlos Crespo
Juan Nacher
author_sort Esther Castillo-Gómez
title Effects of Chronic Dopamine D2R Agonist Treatment and Polysialic Acid Depletion on Dendritic Spine Density and Excitatory Neurotransmission in the mPFC of Adult Rats
title_short Effects of Chronic Dopamine D2R Agonist Treatment and Polysialic Acid Depletion on Dendritic Spine Density and Excitatory Neurotransmission in the mPFC of Adult Rats
title_full Effects of Chronic Dopamine D2R Agonist Treatment and Polysialic Acid Depletion on Dendritic Spine Density and Excitatory Neurotransmission in the mPFC of Adult Rats
title_fullStr Effects of Chronic Dopamine D2R Agonist Treatment and Polysialic Acid Depletion on Dendritic Spine Density and Excitatory Neurotransmission in the mPFC of Adult Rats
title_full_unstemmed Effects of Chronic Dopamine D2R Agonist Treatment and Polysialic Acid Depletion on Dendritic Spine Density and Excitatory Neurotransmission in the mPFC of Adult Rats
title_sort effects of chronic dopamine d2r agonist treatment and polysialic acid depletion on dendritic spine density and excitatory neurotransmission in the mpfc of adult rats
publisher Hindawi Limited
series Neural Plasticity
issn 2090-5904
1687-5443
publishDate 2016-01-01
description Dopamine D2 receptors (D2R) in the medial prefrontal cortex (mPFC) are key players in the etiology and therapeutics of schizophrenia. The overactivation of these receptors contributes to mPFC dysfunction. Chronic treatment with D2R agonists modifies the expression of molecules implicated in neuronal structural plasticity, synaptic function, and inhibitory neurotransmission, which are also altered in schizophrenia. These changes are dependent on the expression of the polysialylated form of the neural cell adhesion molecule (PSA-NCAM), a plasticity-related molecule, but nothing is known about the effects of D2R and PSA-NCAM on excitatory neurotransmission and the structure of mPFC pyramidal neurons, two additional features affected in schizophrenia. To evaluate these parameters, we have chronically treated adult rats with PPHT (a D2R agonist) after enzymatic removal of PSA with Endo-N. Both treatments decreased spine density in apical dendrites of pyramidal neurons without affecting their inhibitory innervation. Endo-N also reduced the expression of vesicular glutamate transporter-1. These results indicate that D2R and PSA-NCAM are important players in the regulation of the structural plasticity of mPFC excitatory neurons. This is relevant to our understanding of the neurobiological basis of schizophrenia, in which structural alterations of pyramidal neurons and altered expression of D2R and PSA-NCAM have been found.
url http://dx.doi.org/10.1155/2016/1615363
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