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Original Article

Procyanidins protects against oxidative damage and cognitive deficits after traumatic brain injury

, , , , , & show all
Pages 86-92 | Received 03 May 2014, Accepted 19 Sep 2014, Published online: 03 Oct 2014

References

  • Coronado VG, Xu L, Basavaraju SV, McGuire LC, Wald MM, Faul MD, Guzman BR, Hemphill JD. Centers for Disease, and Prevention, Surveillance for traumatic brain injury-related deaths–United States, 1997–2007. MMWR Surveillance summaries 2011;60:1–32
  • Slemmer JE, Shacka JJ, Sweeney MI, Weber JT. Antioxidants and free radical scavengers for the treatment of stroke, traumatic brain injury and aging. Current medicinal chemistry 2008;15:404–414
  • Hall ED, Vaishnav RA, Mustafa AG. Antioxidant therapies for traumatic brain injury. Neurotherapeutics 2010;7:51–61
  • Aiguo W, Zhe Y, Gomez-Pinilla F. Vitamin E protects against oxidative damage and learning disability after mild traumatic brain injury in rats. Neurorehabilitation and neural repair 2010;24:290–298
  • Scalbert A, Williamson G. Dietary intake and bioavailability of polyphenols. The Journal of nutrition 2000;130:2073S–2085S
  • Bagchi D, Garg A, Krohn RL, Bagchi M, Bagchi DJ, Balmoori J, Stohs SJ. Protective effects of grape seed proanthocyanidins and selected antioxidants against TPA-induced hepatic and brain lipid peroxidation and DNA fragmentation, and peritoneal macrophage activation in mice. General Pharmacology 1998;30:771–776
  • Koleckar V, Kubikova K, Rehakova Z, Kuca K, Jun D, Jahodar L, Opletal L. Condensed and hydrolysable tannins as antioxidants influencing the health. Mini reviews in medicinal chemistry 2008;8:436–447
  • Wu A, Ying Z, Gomez-Pinilla F. The interplay between oxidative stress and brain-derived neurotrophic factor modulates the outcome of a saturated fat diet on synaptic plasticity and cognition. The European journal of neuroscience 2004;19:1699–1707
  • Mizuno M, Yamada K, Maekawa N, Saito K, Seishima M, Nabeshima T. CREB phosphorylation as a molecular marker of memory processing in the hippocampus for spatial learning. Behavioural brain research 2002;133:135–141
  • Yin JC, Del Vecchio M, Zhou H, Tully T. CREB as a memory modulator: Induced expression of a dCREB2 activator isoform enhances long-term memory in Drosophila. Cell 1995;81:107–115
  • Rosenegger D, Parvez K, Lukowiak K. Enhancing memory formation by altering protein phosphorylation balance. Neurobiology of learning and memory 2008;90:544–552
  • Brightwell JJ, Smith CA, Neve RL, Colombo PJ. Long-term memory for place learning is facilitated by expression of cAMP response element-binding protein in the dorsal hippocampus. Learning & memory 2007;14:195–199
  • Trifilieff P, Herry C, Vanhoutte P, Caboche J, Desmedt A, Riedel G, Mons N, Micheau J. Foreground contextual fear memory consolidation requires two independent phases of hippocampal ERK/CREB activation. Learning & memory 2006;13:349–358
  • Schneider HH. Brain cAMP response to phosphodiesterase inhibitors in rats killed by microwave irradiation or decapitation. Biochemical pharmacology 1984;33:1690–1693
  • Li YF, Huang Y, Amsdell SL, Xiao L, O'Donnell JM, Zhang HT. Antidepressant- and anxiolytic-like effects of the phosphodiesterase-4 inhibitor rolipram on behavior depend on cyclic AMP response element binding protein-mediated neurogenesis in the hippocampus. Neuropsychopharmacology 2009;34:2404–2419
  • Barad M, Bourtchouladze R, Winder DG, Golan H, Kandel E. Rolipram, a type IV-specific phosphodiesterase inhibitor, facilitates the establishment of long-lasting long-term potentiation and improves memory. Proceedings of the National Academy of Sciences of the United States of America 1998;95:15020–15025
  • Xu J, Rong S, Xie B, Sun Z, Zhang L, Wu H, Yao P, Hao L, Liu L. Procyanidins extracted from the lotus seedpod ameliorate age-related antioxidant deficit in aged rats. The journals of gerontology. Series A, Biological sciences and medical sciences 2010;65:236–241
  • Bilgen M. A new device for experimental modeling of central nervous system injuries. Neurorehabilitation and neural repair 2005;19:219–226
  • Onyszchuk G, Al-Hafez B, He YY, Bilgen M, Berman NE, Brooks WM. A mouse model of sensorimotor controlled cortical impact: Characterization using longitudinal magnetic resonance imaging, behavioral assessments and histology. Journal of neuroscience methods 2007;160:187–196
  • Morris R. Developments of a water-maze procedure for studying spatial learning in the rat. Journal of neuroscience methods 1984;11:47–60
  • Liu XX, Li ZY, Meng KY, Ju CJ, Liu ZP, Xu J. The role of PrPC protein in the mouse learning and memory ability. Chinese Journal of Veterinary Science 2013;33:1426–1435
  • Bradford MM. A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye binding. Analytical biochemistry 1976;72:248–254
  • Clausen F, Lundqvist H, Ekmark S, Lewen A, Ebendal T, Hillered L. Oxygen free radical-dependent activation of extracellular signal-regulated kinase mediates apoptosis-like cell death after traumatic brain injury. Journal of neurotrauma 2004;21:1168–1182
  • Merenda A, Gugliotta M, Holloway R, Levasseur JE, Alessandri B, Sun D, Bullock MR. Validation of brain extracellular glycerol as an indicator of cellular membrane damage due to free radical activity after traumatic brain injury. Journal of neurotrauma 2008;25:527–537
  • Shohami E, Beit-Yannai E, Horowitz M, Kohen R. Oxidative stress in closed-head injury: Brain antioxidant capacity as an indicator of functional outcome. Journal of cerebral blood flow and metabolism 1997;17:1007–1019
  • Ustun ME, Duman A, Ogun CO, Vatansev H, Ak A. Effects of nimodipine and magnesium sulfate on endogenous antioxidant levels in brain tissue after experimental head trauma. Journal of neurosurgical anesthesiology 2001;13:227–232
  • Ashman TA, Gordon WA, Cantor JB, Hibbard MR. Neurobehavioral consequences of traumatic brain injury. The Mount Sinai journal of medicine 2006;73:999–1005
  • Himanen L, Portin R, Isoniemi H, Helenius H, Kurki T, Tenovuo O. Cognitive functions in relation to MRI findings 30 years after traumatic brain injury. Brain injury 2005;19:93–100
  • Fujimoto ST, Longhi L, Saatman KE, Conte V, Stocchetti N, McIntosh TK. Motor and cognitive function evaluation following experimental traumatic brain injury. Neuroscience and biobehavioral reviews 2004;28:365–378
  • Alonso M, Vianna MR, Depino AM, Mello e Souza T, Pereira P, Szapiro G, Viola H, Pitossi F, Izquierdo I, Medina JH. BDNF-triggered events in the rat hippocampus are required for both short- and long-term memory formation. Hippocampus 2002;12:551–560
  • Bonni A, Brunet A, West AE, Datta SR, Takasu MA, Greenberg ME. Cell survival promoted by the Ras-MAPK signaling pathway by transcription-dependent and -independent mechanisms. Science 1999;286:1358–1362
  • Sakamoto K, Karelina K, Obrietan K. CREB: A multifaceted regulator of neuronal plasticity and protection. Journal of neurochemistry 2011;116:1–9
  • Segal M, Murphy DD. CREB activation mediates plasticity in cultured hippocampal neurons. Neural plasticity 1998;6:1–7
  • Jones MW, Errington ML, French PJ, Fine A, Bliss TV, Garel S, Charnay P, Bozon B, Laroche S, Davis S. A requirement for the immediate early gene Zif268 in the expression of late LTP and long-term memories. Nature neuroscience 2001;4:289–296
  • Yamashima T. ‘PUFA-GPR40-CREB signaling' hypothesis for the adult primate neurogenesis. Progress in lipid research 2012;51:221–231
  • Carlezon WA, Duman RS, Nestler EJ. The many faces of CREB. Trends in neurosciences 2005;28:436–445

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