Literature DB >> 16943654

Use of advanced neuroimaging techniques in the evaluation of pediatric traumatic brain injury.

Stephen Ashwal1, Barbara A Holshouser, Karen A Tong.   

Abstract

Advanced neuroimaging techniques are now used to expand our knowledge of traumatic brain injury, and increasingly, they are being applied to children. This review will examine four of these methods as they apply to children who present acutely after injury. (1) Susceptibility weighted imaging is a 3-dimensional high-resolution magnetic resonance imaging technique that is more sensitive than conventional imaging in detecting hemorrhagic lesions that are often associated with diffuse axonal injury. (2) Magnetic resonance spectroscopy acquires metabolite information reflecting neuronal integrity and function from multiple brain regions and provides sensitive, noninvasive assessment of neurochemical alterations that offers early prognostic information regarding the outcome. (3) Diffusion weighted imaging is based on differences in diffusion of water molecules within the brain and has been shown to be very sensitive in the early detection of ischemic injury. It is now being used to study the direct effects of traumatic injury as well as those due to secondary ischemia. (4) Diffusion tensor imaging is a form of diffusion weighted imaging and allows better evaluation of white matter fiber tracts by taking advantage of the intrinsic directionality (anisotropy) of water diffusion in human brain. It has been shown to be useful in identifying white matter abnormalities after diffuse axonal injury when conventional imaging appears normal. An important aspect of these advanced methods is that they demonstrate that 'normal-appearing' brain in many instances is not normal, i.e. there is evidence of significant undetected injury that may underlie a child's clinical status. Availability and integration of these advanced imaging methods will lead to better treatment and change the standard of care for use of neuroimaging to evaluate children with traumatic brain injury. Copyright (c) 2006 S. Karger AG, Basel.

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Mesh:

Year:  2006        PMID: 16943654     DOI: 10.1159/000094157

Source DB:  PubMed          Journal:  Dev Neurosci        ISSN: 0378-5866            Impact factor:   2.984


  28 in total

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Authors:  M Sun; W Yuan; D A Hertzler; A Cancelliere; M Altaye; F T Mangano
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Review 2.  Predicting outcome after childhood brain injury.

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3.  Determination of zeta-potential in rat organotypic hippocampal cultures.

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Review 4.  Imaging of accidental paediatric head trauma.

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5.  Mild traumatic brain injury and executive functions in school-aged children.

Authors:  Anne Maillard-Wermelinger; Keith Owen Yeates; H Gerry Taylor; Jerome Rusin; Barbara Bangert; Ann Dietrich; Kathryn Nuss; Martha Wright
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Review 6.  New concepts in treatment of pediatric traumatic brain injury.

Authors:  Jimmy W Huh; Ramesh Raghupathi
Journal:  Anesthesiol Clin       Date:  2009-06

7.  Diffusion tensor imaging of the cingulum bundle in children after traumatic brain injury.

Authors:  Elisabeth A Wilde; Marco A Ramos; Ragini Yallampalli; Erin D Bigler; Stephen R McCauley; Zili Chu; Trevor C Wu; Gerri Hanten; Randall S Scheibel; Xiaoqi Li; Ana C Vásquez; Jill V Hunter; Harvey S Levin
Journal:  Dev Neuropsychol       Date:  2010       Impact factor: 2.253

Review 8.  Susceptibility-weighted imaging and quantitative susceptibility mapping in the brain.

Authors:  Chunlei Liu; Wei Li; Karen A Tong; Kristen W Yeom; Samuel Kuzminski
Journal:  J Magn Reson Imaging       Date:  2014-10-01       Impact factor: 4.813

9.  Early and sustained alterations in cerebral metabolism after traumatic brain injury in immature rats.

Authors:  Paula A Casey; Mary C McKenna; Gary Fiskum; Manda Saraswati; Courtney L Robertson
Journal:  J Neurotrauma       Date:  2008-06       Impact factor: 5.269

Review 10.  Neuroimaging of abusive head trauma.

Authors:  Gary L Hedlund; Lori D Frasier
Journal:  Forensic Sci Med Pathol       Date:  2009-12-12       Impact factor: 2.007

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