Literature DB >> 20739553

Dynamics of the Parkinsonian striatal microcircuit: entrainment into a dominant network state.

Omar Jáidar1, Luis Carrillo-Reid, Adán Hernández, René Drucker-Colín, José Bargas, Arturo Hernández-Cruz.   

Abstract

Neuronal synchronization in basal ganglia circuits plays a key role in the encoding of movement, procedural memory storage and habit formation. Striatal dopamine (DA) depletion during Parkinsonism causes abnormal synchronization in corticobasal ganglia loops resulting in motor dysfunction. However, the dynamics of the striatal microcircuit underlying abnormal synchronization in Parkinsonism is poorly understood. Here we used targeted whole-cell recordings, calcium imaging allowing the recording from dozens of cells simultaneously and analytical approaches, to describe the striking alterations in network dynamics that the striatal microcircuit undergoes following DA depletion in a rat model of Parkinson disease (PD): In addition to a significant enhancement of basal neuronal activity frequent periods of spontaneous synchronization were observed. Multidimensional reduction techniques of vectorized network dynamics revealed that increased synchronization resulted from a dominant network state that absorbed most spontaneously active cells. Abnormal synchronous activity can be virtually abolished by glutamatergic antagonists, while blockade of GABAergic transmission facilitates the engagement of striatal cell assemblies in the dominant state. Finally, a dopaminergic receptor agonist was capable of uncoupling neurons from the dominant state. Abnormal synchronization and "locking" into a dominant state may represent the basic neuronal mechanism that underlies movement disorders at the microcircuit level.

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Year:  2010        PMID: 20739553      PMCID: PMC6633342          DOI: 10.1523/JNEUROSCI.1380-10.2010

Source DB:  PubMed          Journal:  J Neurosci        ISSN: 0270-6474            Impact factor:   6.167


  31 in total

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Journal:  J Neurosci       Date:  2011-01-26       Impact factor: 6.167

2.  Temporal correlations among functionally specialized striatal neural ensembles in reward-conditioned mice.

Authors:  Konstantin I Bakhurin; Victor Mac; Peyman Golshani; Sotiris C Masmanidis
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3.  Desynchronization of fast-spiking interneurons reduces β-band oscillations and imbalance in firing in the dopamine-depleted striatum.

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Review 4.  Primate beta oscillations and rhythmic behaviors.

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5.  Inflammation alters AMPA-stimulated calcium responses in dorsal striatal D2 but not D1 spiny projection neurons.

Authors:  Carissa D Winland; Nora Welsh; Alberto Sepulveda-Rodriguez; Stefano Vicini; Kathleen A Maguire-Zeiss
Journal:  Eur J Neurosci       Date:  2017-10-10       Impact factor: 3.386

6.  Rapid target-specific remodeling of fast-spiking inhibitory circuits after loss of dopamine.

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Review 7.  Dopaminergic modulation of striatal neurons, circuits, and assemblies.

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8.  Spatially Compact Neural Clusters in the Dorsal Striatum Encode Locomotion Relevant Information.

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9.  Functional anatomy: dynamic States in Basal Ganglia circuits.

Authors:  Marianela Garcia-Munoz; Luis Carrillo-Reid; Gordon W Arbuthnott
Journal:  Front Neuroanat       Date:  2010-11-23       Impact factor: 3.856

10.  Direct and GABA-mediated indirect effects of nicotinic ACh receptor agonists on striatal neurones.

Authors:  Ruixi Luo; Megan J Janssen; John G Partridge; Stefano Vicini
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