Literature DB >> 21555573

Optogenetic-guided cortical plasticity after nerve injury.

Nan Li1, John E Downey, Amnon Bar-Shir, Assaf A Gilad, Piotr Walczak, Heechul Kim, Suresh E Joel, James J Pekar, Nitish V Thakor, Galit Pelled.   

Abstract

Peripheral nerve injury causes sensory dysfunctions that are thought to be attributable to changes in neuronal activity occurring in somatosensory cortices both contralateral and ipsilateral to the injury. Recent studies suggest that distorted functional response observed in deprived primary somatosensory cortex (S1) may be the result of an increase in inhibitory interneuron activity and is mediated by the transcallosal pathway. The goal of this study was to develop a strategy to manipulate and control the transcallosal activity to facilitate appropriate plasticity by guiding the cortical reorganization in a rat model of sensory deprivation. Since transcallosal fibers originate mainly from excitatory pyramidal neurons somata situated in laminae III and V, the excitatory neurons in rat S1 were engineered to express halorhodopsin, a light-sensitive chloride pump that triggers neuronal hyperpolarization. Results from electrophysiology, optical imaging, and functional MRI measurements are concordant with that within the deprived S1, activity in response to intact forepaw electrical stimulation was significantly increased by concurrent illumination of halorhodopsin over the healthy S1. Optogenetic manipulations effectively decreased the adverse inhibition of deprived cortex and revealed the major contribution of the transcallosal projections, showing interhemispheric neuroplasticity and thus, setting a foundation to develop improved rehabilitation strategies to restore cortical functions.

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Year:  2011        PMID: 21555573      PMCID: PMC3102379          DOI: 10.1073/pnas.1100815108

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  64 in total

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2.  Role of NMDA receptors in adult primate cortical somatosensory plasticity.

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3.  Receptor autoradiographic correlates of deafferentation-induced reorganization in adult primate somatosensory cortex.

Authors:  Preston E Garraghty; Lori L Arnold; Cara L Wellman; Todd M Mowery
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4.  Multimodal fast optical interrogation of neural circuitry.

Authors:  Feng Zhang; Li-Ping Wang; Martin Brauner; Jana F Liewald; Kenneth Kay; Natalie Watzke; Phillip G Wood; Ernst Bamberg; Georg Nagel; Alexander Gottschalk; Karl Deisseroth
Journal:  Nature       Date:  2007-04-05       Impact factor: 49.962

5.  High spatiotemporal resolution imaging of the neurovascular response to electrical stimulation of rat peripheral trigeminal nerve as revealed by in vivo temporal laser speckle contrast.

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6.  Induction of bilateral plasticity in sensory cortical maps by small unilateral cortical infarcts in rats.

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7.  Correspondence between altered functional and structural connectivity in the contralesional sensorimotor cortex after unilateral stroke in rats: a combined resting-state functional MRI and manganese-enhanced MRI study.

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8.  Lamination and differential distribution of thalamic afferents within the sensory-motor cortex of the squirrel monkey.

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Journal:  J Comp Neurol       Date:  1975-03-15       Impact factor: 3.215

9.  Millisecond-timescale optical control of neural dynamics in the nonhuman primate brain.

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10.  Nerve-Injury Induced Changes to GluR1 and GluR2/3 Sub-unit Expression in Area 3b of Adult Squirrel Monkeys: Developmental Recapitulation?

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  28 in total

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2.  Neural and hemodynamic responses to optogenetic and sensory stimulation in the rat somatosensory cortex.

Authors:  Bistra Iordanova; Alberto L Vazquez; Alexander J Poplawsky; Mitsuhiro Fukuda; Seong-Gi Kim
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3.  Mapping the functional network of medial prefrontal cortex by combining optogenetics and fMRI in awake rats.

Authors:  Zhifeng Liang; Glenn D R Watson; Kevin D Alloway; Gangchea Lee; Thomas Neuberger; Nanyin Zhang
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4.  Non-invasive neuromodulation using rTMS and the electromagnetic-perceptive gene (EPG) facilitates plasticity after nerve injury.

Authors:  Carolina Cywiak; Ryan C Ashbaugh; Abigael C Metto; Lalita Udpa; Chunqi Qian; Assaf A Gilad; Mark Reimers; Ming Zhong; Galit Pelled
Journal:  Brain Stimul       Date:  2020-10-15       Impact factor: 8.955

5.  Molecular neuroimaging of post-injury plasticity.

Authors:  Yan Jouroukhin; Bareng A S Nonyane; Assaf A Gilad; Galit Pelled
Journal:  J Mol Neurosci       Date:  2014-06-10       Impact factor: 3.444

6.  Study of the spatial correlation between neuronal activity and BOLD fMRI responses evoked by sensory and channelrhodopsin-2 stimulation in the rat somatosensory cortex.

Authors:  Nan Li; Peter van Zijl; Nitish Thakor; Galit Pelled
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7.  Evidence for impaired plasticity after traumatic brain injury in the developing brain.

Authors:  Nan Li; Ya Yang; David P Glover; Jiangyang Zhang; Manda Saraswati; Courtney Robertson; Galit Pelled
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8.  Optogenetic neuronal stimulation promotes functional recovery after stroke.

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9.  Peripheral nerve injury induces immediate increases in layer v neuronal activity.

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Review 10.  Genetic tools to manipulate MRI contrast.

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Journal:  NMR Biomed       Date:  2013-01-28       Impact factor: 4.044

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