Literature DB >> 21601615

Activity-regulated genes as mediators of neural circuit plasticity.

Jennifer H Leslie1, Elly Nedivi.   

Abstract

Modifications of neuronal circuits allow the brain to adapt and change with experience. This plasticity manifests during development and throughout life, and can be remarkably long lasting. Evidence has linked activity-regulated gene expression to the long-term structural and electrophysiological adaptations that take place during developmental critical periods, learning and memory, and alterations to sensory map representations in the adult. In all these cases, the cellular response to neuronal activity integrates multiple tightly coordinated mechanisms to precisely orchestrate long-lasting, functional and structural changes in brain circuits. Experience-dependent plasticity is triggered when neuronal excitation activates cellular signaling pathways from the synapse to the nucleus that initiate new programs of gene expression. The protein products of activity-regulated genes then work via a diverse array of cellular mechanisms to modify neuronal functional properties. Synaptic strengthening or weakening can reweight existing circuit connections, while structural changes including synapse addition and elimination create new connections. Posttranscriptional regulatory mechanisms, often also dependent on activity, further modulate activity-regulated gene transcript and protein function. Thus, activity-regulated genes implement varied forms of structural and functional plasticity to fine-tune brain circuit wiring.
Copyright © 2011 Elsevier Ltd. All rights reserved.

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Year:  2011        PMID: 21601615      PMCID: PMC3134580          DOI: 10.1016/j.pneurobio.2011.05.002

Source DB:  PubMed          Journal:  Prog Neurobiol        ISSN: 0301-0082            Impact factor:   11.685


  260 in total

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Review 4.  Lifelong learning: ocular dominance plasticity in mouse visual cortex.

Authors:  Sonja B Hofer; Thomas D Mrsic-Flogel; Tobias Bonhoeffer; Mark Hübener
Journal:  Curr Opin Neurobiol       Date:  2006-07-11       Impact factor: 6.627

5.  Arc, a growth factor and activity-regulated gene, encodes a novel cytoskeleton-associated protein that is enriched in neuronal dendrites.

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Authors:  K Yamagata; K I Andreasson; H Sugiura; E Maru; M Dominique; Y Irie; N Miki; Y Hayashi; M Yoshioka; K Kaneko; H Kato; P F Worley
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7.  Increased expression of the immediate-early gene arc/arg3.1 reduces AMPA receptor-mediated synaptic transmission.

Authors:  Emiliano M Rial Verde; Jane Lee-Osbourne; Paul F Worley; Roberto Malinow; Hollis T Cline
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Journal:  Neuron       Date:  2006-11-09       Impact factor: 17.173

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  48 in total

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3.  Motor cortical plasticity in schizophrenia: A meta-analysis of Transcranial Magnetic Stimulation - Electromyography studies.

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5.  ARNT2 Tunes Activity-Dependent Gene Expression through NCoR2-Mediated Repression and NPAS4-Mediated Activation.

Authors:  Nikhil Sharma; Elizabeth A Pollina; M Aurel Nagy; Ee-Lynn Yap; Florence A DiBiase; Sinisa Hrvatin; Linda Hu; Cindy Lin; Michael E Greenberg
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6.  Mutation of MeCP2 alters transcriptional regulation of select immediate-early genes.

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Journal:  Epigenetics       Date:  2012-02       Impact factor: 4.528

7.  HDAC4 governs a transcriptional program essential for synaptic plasticity and memory.

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8.  In vivo two-photon imaging of experience-dependent molecular changes in cortical neurons.

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Review 9.  Activity-Regulated Transcription: Bridging the Gap between Neural Activity and Behavior.

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Review 10.  Splitting hares and tortoises: a classification of neuronal immediate early gene transcription based on poised RNA polymerase II.

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