Literature DB >> 23305562

Cortical reorganization after experimental traumatic brain injury: a functional autoradiography study.

Neil G Harris1, Szu-Fu Chen, John D Pickard.   

Abstract

Cortical sensorimotor (SM) maps are a useful readout for providing a global view of the underlying status of evoked brain function, as well as a gross overview of ongoing mechanisms of plasticity. Recent evidence in the rat controlled cortical impact (CCI) injury model shows that the ipsilesional (injured) hemisphere is temporarily permissive for axon sprouting. This would predict that size and spatial alterations in cortical maps may occur much earlier than previously tested and that they might be useful as potential markers of the postinjury plasticity period as well as indicators of outcome. We investigated the evolution of changes in brain activation evoked by affected hindlimb electrical stimulation at 4, 7, and 30 days following CCI or sham injury over the hindlimb cortical region of adult rats. [(14)C]-iodoantipyrine autoradiography was used to quantitatively examine the local cerebral blood flow changes in response to hindlimb stimulation as a marker for neuronal activity. The results show that although ipsilesional hindlimb SM activity was persistently depressed from 4 days, additional novel regions of ipsilesional activity appeared concurrently within SM barrel and S2 regions as well as posterior auditory cortex. Simultaneously with this was the appearance of evoked activity within the intact, contralesional cortex that was maximal at 4 and 7 days, compared to stimulated sham-injured rats, where activation was solely unilateral. By 30 days, however, contralesional activation had greatly subsided and existing ipsilesional activity was enhanced within the same novel cortical regions that were identified acutely. These data indicate that significant reorganization of the cortical SM maps occurs after injury that evolves with a particular postinjury time course. We discuss these data in terms of the known mechanisms of plasticity that are likely to underlie these map changes, with particular reference to the differences and similarities that exist between rodent models of stroke and traumatic brain injury.

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Year:  2013        PMID: 23305562      PMCID: PMC3700473          DOI: 10.1089/neu.2012.2785

Source DB:  PubMed          Journal:  J Neurotrauma        ISSN: 0897-7151            Impact factor:   5.269


  60 in total

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Authors:  K M Jacobs; J P Donoghue
Journal:  Science       Date:  1991-02-22       Impact factor: 47.728

2.  Refining the sensory and motor ratunculus of the rat upper extremity using fMRI and direct nerve stimulation.

Authors:  Younghoon R Cho; Christopher P Pawela; Rupeng Li; Dennis Kao; Marie L Schulte; Matthew L Runquist; Ji-Geng Yan; Hani S Matloub; Safwan S Jaradeh; Anthony G Hudetz; James S Hyde
Journal:  Magn Reson Med       Date:  2007-11       Impact factor: 4.668

3.  Functional reorganization of the brain in recovery from striatocapsular infarction in man.

Authors:  C Weiller; F Chollet; K J Friston; R J Wise; R S Frackowiak
Journal:  Ann Neurol       Date:  1992-05       Impact factor: 10.422

4.  Functional recovery of forelimb response capacity after forelimb primary motor cortex damage in the rat is due to the reorganization of adjacent areas of cortex.

Authors:  M A Castro-Alamancos; J Borrel
Journal:  Neuroscience       Date:  1995-10       Impact factor: 3.590

5.  Neuronal damage and plasticity identified by microtubule-associated protein 2, growth-associated protein 43, and cyclin D1 immunoreactivity after focal cerebral ischemia in rats.

Authors:  Y Li; N Jiang; C Powers; M Chopp
Journal:  Stroke       Date:  1998-09       Impact factor: 7.914

6.  Chondroitinase ABC enhances pericontusion axonal sprouting but does not confer robust improvements in behavioral recovery.

Authors:  Neil G Harris; Yevgeniya A Mironova; David A Hovda; Richard L Sutton
Journal:  J Neurotrauma       Date:  2010-10-20       Impact factor: 5.269

7.  Preventing flow-metabolism uncoupling acutely reduces axonal injury after traumatic brain injury.

Authors:  Neil G Harris; Yevgeniya A Mironova; Szu-Fu Chen; Hugh K Richards; John D Pickard
Journal:  J Neurotrauma       Date:  2012-03-29       Impact factor: 5.269

8.  Unilateral ischemic sensorimotor cortical damage induces contralesional synaptogenesis and enhances skilled reaching with the ipsilateral forelimb in adult male rats.

Authors:  Linslee M Luke; Rachel P Allred; Theresa A Jones
Journal:  Synapse       Date:  2004-12-15       Impact factor: 2.562

9.  Lateralized effect of unilateral somatosensory cortex contusion on behavior and cortical reorganization.

Authors:  A A Dunn-Meynell; B E Levin
Journal:  Brain Res       Date:  1995-03-27       Impact factor: 3.252

10.  The functional anatomy of motor recovery after stroke in humans: a study with positron emission tomography.

Authors:  F Chollet; V DiPiero; R J Wise; D J Brooks; R J Dolan; R S Frackowiak
Journal:  Ann Neurol       Date:  1991-01       Impact factor: 10.422

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  11 in total

1.  Forelimb training drives transient map reorganization in ipsilateral motor cortex.

Authors:  David T Pruitt; Ariel N Schmid; Tanya T Danaphongse; Kate E Flanagan; Robert A Morrison; Michael P Kilgard; Robert L Rennaker; Seth A Hays
Journal:  Behav Brain Res       Date:  2016-07-05       Impact factor: 3.332

2.  Traumatic Brain Injury Occludes Training-Dependent Cortical Reorganization in the Contralesional Hemisphere.

Authors:  David T Pruitt; Tanya T Danaphongse; Ariel N Schmid; Robert A Morrison; Michael P Kilgard; Robert L Rennaker; Seth A Hays
Journal:  J Neurotrauma       Date:  2017-07-19       Impact factor: 5.269

3.  Metabolic fate of glucose in rats with traumatic brain injury and pyruvate or glucose treatments: A NMR spectroscopy study.

Authors:  Katsunori Shijo; Richard L Sutton; Sima S Ghavim; Neil G Harris; Brenda L Bartnik-Olson
Journal:  Neurochem Int       Date:  2016-12-03       Impact factor: 3.921

4.  Bi-directional changes in fractional anisotropy after experiment TBI: Disorganization and reorganization?

Authors:  N G Harris; D R Verley; B A Gutman; R L Sutton
Journal:  Neuroimage       Date:  2016-03-11       Impact factor: 6.556

5.  Disconnection and hyper-connectivity underlie reorganization after TBI: A rodent functional connectomic analysis.

Authors:  N G Harris; D R Verley; B A Gutman; P M Thompson; H J Yeh; J A Brown
Journal:  Exp Neurol       Date:  2015-12-28       Impact factor: 5.330

6.  Cortical Neuromodulation of Remote Regions after Experimental Traumatic Brain Injury Normalizes Forelimb Function but is Temporally Dependent.

Authors:  Derek R Verley; Daniel Torolira; Brittany A Hessell; Richard L Sutton; Neil G Harris
Journal:  J Neurotrauma       Date:  2018-10-04       Impact factor: 5.269

7.  Remote Changes in Cortical Excitability after Experimental Traumatic Brain Injury and Functional Reorganization.

Authors:  Derek R Verley; Daniel Torolira; Brandon Pulido; Boris Gutman; Anatol Bragin; Andrew Mayer; Neil G Harris
Journal:  J Neurotrauma       Date:  2018-07-06       Impact factor: 5.269

8.  SCF + G-CSF treatment in the chronic phase of severe TBI enhances axonal sprouting in the spinal cord and synaptic pruning in the hippocampus.

Authors:  Xuecheng Qiu; Suning Ping; Michele Kyle; Lawrence Chin; Li-Ru Zhao
Journal:  Acta Neuropathol Commun       Date:  2021-04-08       Impact factor: 7.801

9.  Traumatic brain injury augurs ill for prolonged deficits in the brain's structural and functional integrity following controlled cortical impact injury.

Authors:  Abdalla Z Mohamed; Paul Cumming; Fatima A Nasrallah
Journal:  Sci Rep       Date:  2021-11-03       Impact factor: 4.379

10.  TrkB-enhancer facilitates functional recovery after traumatic brain injury.

Authors:  John Marshall; Joanna Szmydynger-Chodobska; Mengia S Rioult-Pedotti; Kara Lau; Andrea T Chin; Siva K Reddy Kotla; Rakesh Kumar Tiwari; Keykavous Parang; Steven W Threlkeld; Adam Chodobski
Journal:  Sci Rep       Date:  2017-09-08       Impact factor: 4.379

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