Literature DB >> 1787745

A controlled cortical impact model of traumatic brain injury in the rat.

C E Dixon1, G L Clifton, J W Lighthall, A A Yaghmai, R L Hayes.   

Abstract

Controlled cortical impact models produce brain injury by using a pneumatic impactor to impact exposed brain. This study systematically examined the effects of varying magnitudes of controlled cortical impact to the rat brain on neurological, cardiovascular, and histopathological variables. As the magnitude of injury increased, the duration of suppression of somatomotor reflexes and the duration of chronic vestibular motor deficits increased. The blood pressure response was observed to depend on injury levels; a moderate injury level produced a hypotensive response while a high injury level produced an immediate brief hypertensive response followed by hypotension. Low injury levels produced no significant macroscopic or microscopic change, but higher injury levels produced cortical contusion and intraparenchymal hemorrhage which, with increasing survival time, evolved into necrotic changes and cavitation underlying the injury site. Also with high levels of injury, axonal injury was found throughout the brain-stem with the greatest concentration of injured axons occurring in the cerebellar peduncles and pontomedullary junction. These data demonstrate that controlled cortical impact in the rat reproduces many of the features observed in other experimental animal models. This model allows independent control of many mechanical loading parameters associated with traumatic brain injury. The controlled cortical impact rat model should be an effective experimental tool to investigators of traumatic brain injury.

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Year:  1991        PMID: 1787745     DOI: 10.1016/0165-0270(91)90104-8

Source DB:  PubMed          Journal:  J Neurosci Methods        ISSN: 0165-0270            Impact factor:   2.390


  321 in total

1.  Repetitive mild brain trauma accelerates Abeta deposition, lipid peroxidation, and cognitive impairment in a transgenic mouse model of Alzheimer amyloidosis.

Authors:  Kunihiro Uryu; Helmut Laurer; Tracy McIntosh; Domenico Praticò; Daniel Martinez; Susan Leight; Virginia M-Y Lee; John Q Trojanowski
Journal:  J Neurosci       Date:  2002-01-15       Impact factor: 6.167

2.  Real-time PCR quantitation of FE65 a beta-amyloid precursor protein-binding protein after traumatic brain injury in rats.

Authors:  Morio Iino; Masato Nakatome; Yoshiaki Ogura; Harutoshi Fujimura; Hisanaga Kuroki; Hiromasa Inoue; Yukiko Ino; Tasuku Fujii; Toshiyuki Terao; Ryoji Matoba
Journal:  Int J Legal Med       Date:  2003-04-18       Impact factor: 2.686

Review 3.  Neurological effects of blast injury.

Authors:  Ramona R Hicks; Stephanie J Fertig; Rebecca E Desrocher; Walter J Koroshetz; Joseph J Pancrazio
Journal:  J Trauma       Date:  2010-05

4.  CR8, a selective and potent CDK inhibitor, provides neuroprotection in experimental traumatic brain injury.

Authors:  Shruti V Kabadi; Bogdan A Stoica; Marie Hanscom; David J Loane; Giorgi Kharebava; Michael G Murray Ii; Rainier M Cabatbat; Alan I Faden
Journal:  Neurotherapeutics       Date:  2012-04       Impact factor: 7.620

5.  Ketogenic diet prevents alterations in brain metabolism in young but not adult rats after traumatic brain injury.

Authors:  Ying Deng-Bryant; Mayumi L Prins; David A Hovda; Neil G Harris
Journal:  J Neurotrauma       Date:  2011-08-04       Impact factor: 5.269

6.  Oral fish oil restores striatal dopamine release after traumatic brain injury.

Authors:  Samuel S Shin; C Edward Dixon
Journal:  Neurosci Lett       Date:  2011-04-14       Impact factor: 3.046

Review 7.  A review of neuroprotection pharmacology and therapies in patients with acute traumatic brain injury.

Authors:  Kevin W McConeghy; Jimmi Hatton; Lindsey Hughes; Aaron M Cook
Journal:  CNS Drugs       Date:  2012-07-01       Impact factor: 5.749

Review 8.  Animal models of traumatic brain injury.

Authors:  Ye Xiong; Asim Mahmood; Michael Chopp
Journal:  Nat Rev Neurosci       Date:  2013-02       Impact factor: 34.870

9.  Long-lasting benefits after treatment of traumatic brain injury (TBI) in rats with combination therapy of marrow stromal cells (MSCs) and simvastatin.

Authors:  Asim Mahmood; Anton Goussev; Dunyue Lu; Changsheng Qu; Ye Xiong; Humaira Kazmi; Michael Chopp
Journal:  J Neurotrauma       Date:  2008-12       Impact factor: 5.269

10.  Chronic methylphenidate treatment enhances striatal dopamine neurotransmission after experimental traumatic brain injury.

Authors:  Amy K Wagner; Laura L Drewencki; Xiangbai Chen; F Ryan Santos; Amina S Khan; Rashed Harun; Gonzalo E Torres; Adrian C Michael; C Edward Dixon
Journal:  J Neurochem       Date:  2008-12-10       Impact factor: 5.372

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