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Original

Expressive proteomics profile changes of injured human brain cortex due to acute brain trauma

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Pages 830-840 | Received 12 Feb 2009, Accepted 20 Jul 2009, Published online: 09 Sep 2009

References

  • Maas A, Marmarou A, Murray G, Teasdale S, Steyerberg E. Prognosis and clinical trial design in traumatic brain injury: the IMPACT study. Journal of Neurotrauma 2007; 24: 232–238
  • Crooks C, Zumsteg J, Bell K. Traumatic brain injury: a review of practice management and recent advances. Physical Medicine Rehabilitation Clinics of North America 2007; 18: 681–710
  • Marion D. Evidenced-based guidelines for traumatic brain injuries. Progress in Neurological Surgery 2006; 19: 171–196
  • Gennarelli T. The pathobiology of traumatic brain injury. Neuroscientist 1997; 3: 73–81
  • Gaetz M. The neurophysiology of brain injury. Clinical Neurophysiology 2004; 115: 4–18
  • Werner C, Engelhard K. Pathophysiology of traumatic brain injury. British Journal of Anaesthesiology 2007; 99: 4–9
  • Tomomura M, Morita N, Yoshikawa F, Konishi A, Akiyama H, Furuichi T, Kamiguchi H. Structural and functional analysis of the apoptosis-associated tyrosine kinase (AATYK) family. Neuroscience 2007; 148: 510–521
  • Plesnila N, Baumgarten L, Retiounskaia M, Engel D, Ardeshiri A, Zimmermann R, Hoffmann F, Landshamer S, Wagner E, Culmsee C. Delayed neuronal death after brain trauma involves p53-dependent inhibition of NF-κB transcriptional activity. Cell Death and Differentiation 2007; 14: 1529–1541
  • Alessandri B, Nishioka T, Heimann A, Bullock R, Kempski O. Caspase-dependent cell death involved in brain damage after acute subdural hematoma in rats. Brain Research 2006; 1111: 196–202
  • Kiryu-Seo S, Kato R, Ogawa T, Nakagomi S, Nagata K, Kiyama H. Neuronal injury-inducible gene is synergistically regulated by ATF3, cJun and STAT3, through the interaction with Sp1 in damaged neurons. Journal of Biological Chemistry 2008; 283: 6988–6996
  • Bajo M, Fruehauf J, Kim SH, Fountoukakis M, Lubec G. Proeomic evaluation of intermediary metabolism enzyme proteins in fetal Down's syndrome cerebral cortex. Proteomics 2002; 2: 1539–1546
  • Bernanova-Giorgianni S, Giorgianni F, Desiderio D. Analysis of the proteome in the human pituitary. Proteomics 2002; 2: 534–542
  • Butterfield D. Proteomics: a new approach to investigate oxidative stress in Alzheimer's disease brain. Brain Research 2004; 1000: 1–7
  • Castegna A, Thongboonkerd V, Klein J, Lynn B, Markesbery W, Butterfield D. Proteomic identification of nitrated proteins in Alzheimer's disease brain. Journal of Neurochemistry 2003; 85: 1394–1401
  • Bradford M. A rapid and sensitive method for the quantitation of protein utilizing the principle of protein dye binding. Analytical Biochemistry 1976; 72: 248–252
  • Gorg A, Obermaier C, Boguth G, Harder A, Scheibe B, Wildgruber R, Weiss W. The current state of two-dimensional electrophoresis with immobilized pH gradients. Electrophoresis 2000; 21: 1037–1053
  • Patel K, Stein R, Benvenuti S, Zvelebil M. Combinatorial use of mRNA and two-dimensional electrophoresis expression data to choose relevant features for mass spectrometric identification. Proteomics 2002; 2: 1464–1473
  • Cernak I. Recent advances in neuroprotection for treating traumatic brain injury. Expert Opinions in Investigative Drugs 2006; 15: 1371–1381
  • Abdullaev Y, Posner M. How the brain recovers following damage. Nature in Neuroscience 2005; 8: 1424–1425
  • Lee J, Chen K, Liu Zh. Adult motor neuron apoptosis is mediated by nitric oxide and Fas death receptor linked by DNA damage and p53 activation. Journal of Neuroscience 2005; 25: 6449–6459
  • Fei Zh, Zhang X, Bai H, Jiang X, Li X, Zhang W, Hu W. Posttraumatic secondary brain insults exacerbates neuronal injury by altering metabotropic glutamate receptors. BMC Neuroscience 2007; 8: 96
  • Williams A, Wei H, Dave J, Tortella F. Acute and delayed neuroinflammatory response following experimental penetrating ballistic brain injury in the rat. Journal of Neuroinflammation 2007; 4: 17
  • Liu M, Akle V, Zheng W, Dave J, Tortella F, Hayes R, Wang K. Comparing calpain- and caspase-3-mediated degradation patterns in traumatic brain injury by differential proteome analysis. Biochemistry Journal 2006; 394: 715–725
  • Davidsson P, Paulson L, Hesse C, Blennow K, Nilsson C. Proteome studies of human cerebrospinal fluid and brain tissue using a preparative two-dimensional electrophoresis approach prior to mass spectrometry. Proteomics 2001; 1: 444–452
  • Davidsson P, Sjogren M, Andreasen N, Lindbfer M, Nilsson C, Westman-Brinkmalm A, Blennow K. Studies of the pathophysiological mechanisms in frontotemporal demenia by proteome analysis of CSF proteins. Brain Research and Molecular Brain Research 2002; 109: 128–133
  • Fountoulakis M, Juranville J, Dierssen M, Lubec G. Proteomic analysis of the fetal brain. Proteomics 2002; 2: 1547–1576
  • Lubec G, Krapfenbauer K, Fountoulakis. Proteomics in brain research: potentials and limitations. Progress in Neurobiology 2003; 69: 193–211
  • Kim S, Voshol H, Oostrum J, Hastings T, Cascio M, Glucksman M. Neuroproteomics: expression profiling of the brain's proteomes in health and disease. Neurochemistry Research 2004; 29: 1317–1331
  • Peyrl A, Krapfenbauer K, Slavc I, Yang J, Strobel T, Lubec G. Protein profiles of medulloblastoma cell lines DAOY and D283: identification of tumor-related proteins and principles. Proteomics 2003; 3: 1781–1800
  • Sultana R, Boyd-Kimball D, Poon H, Cai J, Pierce W, Klein J, Markesbery W, Zhou X, Lu K, Butterfield D. Oxidative modification and down-regulation of Pin1 in Alzheimer's disease hippocampus: a redox proteomics analysis. Neurobiology of Aging 2006; 27: 918–925
  • Maurer M, Feldmann R, Futterer C, Kuschinsky W. The proteome of neural stem cells from adult rat hippocampus. Proteome Science 2003; 1: 4
  • Hoffrogge R, Beyer S, Volker U, Uhrmacher A, Rolfs A. 2-DE proteomic profiling of neuronal stem cells. Neurodegenerative Diseases 2006; 3: 112–121
  • Yang J, Rodrigo R, Felipo V, Lubec G. Proteome analysis of primary neurons and astrocytes from rat cerebellum. Journal of Proteome Research 2005; 4: 768–788
  • Vanrobaeys F, Coster R, Dhondt G, Devreese B, Beeumen J. Profiling of myelin proteins by 2D-gel electrophoresis and multidimensional liquid chromatography coupled to MALDI TOF-TOF mass spectrometry. Journal of Proteome Research 2005; 4: 2283–2293
  • Kochanek A, Kline A, Gao W, Chadha M, Lai Y, Clark R, Dixon C, Jenkins L. Gel-based hippocampal proteomic analysis 2 weeks following traumatic brain injury to immature rats using controlled cortical impact. Developmental Neuroscience 2006; 28: 410–419
  • Ekegren T, Hanrieder J, Aquilonius S, Bergquist J. Focused proteomics in post-mortem human spinal cord. Journal of Proteome Research 2006; 5: 2364–2371
  • Chen W, Ji J, Zhao R, Ru B. Comparative proteome analysis of human temporal cortex lobes by two-dimensional electrophoresis and identification of selected common proteins. Neurochemistry Research 2002; 27: 9871–9881
  • Eun J, Chio H, Kwak Y. Proteomic analysis of human cerebral cortex in epileptic patients. Experiments in Molecular Medicine 2004; 36: 185–191
  • Jenkins L, Peters G, Dixon C, Zhang X, Clark R, Skinner J, Marion D, Adelson P, Kochanek D. Conventional and functional proteomics using large format two-dimensional gel electrophoresis 24 hours after controlled cortical impact in postnatal day 17 rats. Journal of Neurotrauma 2002; 19: 715–740
  • Belli A, Sen J, Petzold A, Russo S, Kitchen N, Smith M. Metabolic failure precedes intracranial pressure rises in traumatic brain injury: a microdialysis study. Acta Neurochirgica (Wien) 2008; 150: 461–469
  • Oddo M, Schmidt J, Mayer S, Chioléro R. Glucose control after severe brain injury. Current Opinions in Clinical and Nutritional Metabolic Care 2008; 11: 134–139
  • Soustiel J, Sviri G. Monitoring of cerebral metabolism: non-ischemic impairment of oxidative metabolism following severe traumatic brain injury. Neurology Research 2007; 29: 654–660
  • Hlatky R, Valadka A, Gopinath S, Robertson C. Brain tissue oxygen tension response to induced hyperoxia reduced in hypoperfused brain. Journal of Neurosurgery 2008; 108: 53–58
  • Loan N. Metabolic/nutritional alterations of traumatic brain injury. Nutrition 1999; 15: 809–812
  • Buono P, Conciliis L, Izzo P, Salvatore F. The transcription of the human fructose-bisphosphate aldolase C gene is activated by nerve-growth-factor-induced B factor in human neuroblastoma cells. Biochemistry Journal 1997; 323: 245–250
  • Yamaji R, Fujita K, Nakanishi I, Nagao K, Naito M, Tsuruo T, Inui H, Nakano Y. Hypoxic up-regulation of triosephosphate isomerase expression in mouse brain capillary endothelial cells. Archives of Biochemistry and Biophysics 2004; 423: 332–342
  • Poon H, Farr S, Thongboonkerd V, Lynn B, Banks W, Morley J, Klein J, Butterfield D. Proteomic analysis of specific brain proteins in aged SAMP8 mice treated with alpha-lipoic acid: implications for aging and age-related neurodegenerative disorders. Neurochemistry International 2005; 46: 159–168
  • Hanai N, Nagata K, Kawajiri A, Shiromizu T, Saitoh N, Hasegawa Y, Murakami S, Inagaki M. Biochemical and cell biological characterization of a mammalian septin, Sept 11. FEBS Letters 2004; 568: 83–88
  • Kartmann B, Roth D. Novel roles for mammalian septins: from vesicle trafficking to oncogenesis. Journal of Cell Science 2001; 114: 839–844
  • Field C, Kellogg D. Septins: cytoskeletal polymers or signaling GTPases? Trends in Cellular Biology 1999; 9: 387–394
  • Mills J, Digicaylioglu M, Legg A, Young C, Barr A, Fletcher L, O'Connor T, Dedhar S. Role of integrin-linked kinase in nerve growth factor-stimulated neurite outgrowth. Journal of Neuroscience 2003; 23: 1638–1648
  • Kaneko Y, Kitazato K, Basaki Y. Integrin-linked kinase regulates vascular morphogenesis induced by vascular endothelial growth factor. Journal of Cellular Science 2004; 117: 407–415
  • Yoganathan N, Yee A, Zhang Z. Integrin-linked kinase, a promising cancer therapeutic target: biochemical and biological properties. Pharmacological Therapy 2002; 93: 233–242
  • Renault F, Formstecher E, Callebaut I, Junier MP, Chneiweiss H. The multifunctional protein PEA-15 is involved in the control of apoptosis and cell cycle in astrocytes. Biochemistry and Pharmacology 2003; 66: 1581–1588
  • Formsstecher E, Ramos J, Fauquet M, Calderwood D, Hsieh J, Canton B, Nguyen X, Barnier J, Camonis J, Ginsberg M. PEA-15 mediates cytoplasmic sequestration of ERK MAP kinase. Development of the Cell 2001; 1: 239–250
  • Chin L, Fu Q, Kachinsky A, Jabren G, Niu Y, Li L. Neuron-specific and developmental regulation of the synapsin II gene expression in transgenic mice. Brain Research and Molecular Brain Research 1999; 67: 239–246
  • Leypoldt F, Flajolet M, Mether A. Neuronal differentiation of cultured human NTERA-2cl.D1 cells leads to increased expression of synapsins. Neuroscience Letters 2002; 324: 37–40

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