Literature DB >> 17518533

Proteomic identification of oxidized mitochondrial proteins following experimental traumatic brain injury.

Wycliffe O Opii1, Vidya N Nukala, Rukhsana Sultana, Jignesh D Pandya, Kristen M Day, Michael L Merchant, Jon B Klein, Patrick G Sullivan, D Allan Butterfield.   

Abstract

Experimental traumatic brain injury (TBI) results in a significant loss of cortical tissue at the site of injury, and in the ensuing hours and days a secondary injury exacerbates this primary injury, resulting in significant neurological dysfunction. The mechanism of the secondary injury is not well understood, but evidence implicates a critical role for mitochondria in this cascade. This mitochondrial dysfunction is believed to involve excitotoxicity, disruption of Ca(2+) homeostasis, production of reactive oxygen species (ROS), ATP depletion, oxidative damage of mitochondrial proteins, and an overall breakdown of mitochondrial bioenergetics. Although oxidative damage occurs following TBI, the identities of proteins undergoing oxidative modification after TBI have not been investigated. In the present study, we utilized the 3-h post-injury controlled cortical impact model of experimental TBI in 20 young adult male Sprague-Dawley rats, coupled with proteomics to identify specific mitochondrial fraction proteins from the cortex and hippocampus that were oxidatively modified after TBI. We identified, from the cortex, pyruvate dehydrogenase, voltage-dependent anion channel, fumarate hydratase 1, ATP synthase, and prohibitin. From the hippocampus, we identified cytochrome C oxidase Va, isovaleryl coenzyme A dehydrogenase, enolase-1, and glyceraldehyde-3-phosphate dehydrogenase as proteins that had undergone oxidative modification following TBI. In addition, we have also shown that, following TBI, there is a reduction in the activities of pyruvate dehydrogenase (PDH), complex I, and complex IV. These findings demonstrate that, following TBI, several proteins involved in mitochondrial bioenergetics are highly oxidatively modified, which may possibly underlie the massive breakdown of mitochondrial energetics and eventual cell death known to occur in this model. The identification of these proteins provides new insights into the mechanisms that take place following TBI and may provide avenues for possible therapeutic interventions after TBI.

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Year:  2007        PMID: 17518533     DOI: 10.1089/neu.2006.0229

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


  65 in total

1.  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

2.  Acetyl-L-carnitine ameliorates mitochondrial dysfunction following contusion spinal cord injury.

Authors:  Samir P Patel; Patrick G Sullivan; Travis S Lyttle; Alexander G Rabchevsky
Journal:  J Neurochem       Date:  2010-04-23       Impact factor: 5.372

Review 3.  Mitochondrial dysfunction and cell death in neurodegenerative diseases through nitroxidative stress.

Authors:  Mohammed Akbar; Musthafa Mohamed Essa; Ghazi Daradkeh; Mohamed A Abdelmegeed; Youngshim Choi; Lubna Mahmood; Byoung-Joon Song
Journal:  Brain Res       Date:  2016-02-13       Impact factor: 3.252

4.  Traumatically injured astrocytes release a proteomic signature modulated by STAT3-dependent cell survival.

Authors:  Jaclynn Levine; Eunice Kwon; Pablo Paez; Weihong Yan; Gregg Czerwieniec; Joseph A Loo; Michael V Sofroniew; Ina-Beate Wanner
Journal:  Glia       Date:  2015-12-19       Impact factor: 7.452

Review 5.  Mechanisms of altered redox regulation in neurodegenerative diseases--focus on S--glutathionylation.

Authors:  Elizabeth A Sabens Liedhegner; Xing-Huang Gao; John J Mieyal
Journal:  Antioxid Redox Signal       Date:  2012-01-06       Impact factor: 8.401

Review 6.  Mitochondrial damage & lipid signaling in traumatic brain injury.

Authors:  Andrew M Lamade; Tamil S Anthonymuthu; Zachary E Hier; Yuan Gao; Valerian E Kagan; Hülya Bayır
Journal:  Exp Neurol       Date:  2020-04-11       Impact factor: 5.330

7.  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

8.  Age-related changes in mitochondrial respiration and oxidative damage in the cerebral cortex of the Fischer 344 rat.

Authors:  Lesley K Gilmer; Mubeen A Ansari; Kelly N Roberts; Stephen W Scheff
Journal:  Mech Ageing Dev       Date:  2010-01-18       Impact factor: 5.432

9.  N-acetylcysteine amide preserves mitochondrial bioenergetics and improves functional recovery following spinal trauma.

Authors:  Samir P Patel; Patrick G Sullivan; Jignesh D Pandya; Glenn A Goldstein; Jenna L VanRooyen; Heather M Yonutas; Khalid C Eldahan; Johnny Morehouse; David S K Magnuson; Alexander G Rabchevsky
Journal:  Exp Neurol       Date:  2014-05-05       Impact factor: 5.330

10.  Oxygen consumption deficit in Huntington disease mouse brain under metabolic stress.

Authors:  Song Lou; Victoria C Lepak; Lynn E Eberly; Brian Roth; Weina Cui; Xiao-Hong Zhu; Gülin Öz; Janet M Dubinsky
Journal:  Hum Mol Genet       Date:  2016-05-18       Impact factor: 6.150

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