Evidence for the therapeutic efficacy of either mild hypothermia or oxygen radical scavengers after repetitive mild traumatic brain injury.
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[1] J. Povlishock,et al. Therapeutic targeting of the axonal and microvascular change associated with repetitive mild traumatic brain injury. , 2013, Journal of neurotrauma.
[2] N. Chandra,et al. Induction of oxidative and nitrosative damage leads to cerebrovascular inflammation in an animal model of mild traumatic brain injury induced by primary blast. , 2013, Free radical biology & medicine.
[3] P. Dash,et al. Repeated mild closed head injury impairs short-term visuospatial memory and complex learning. , 2013, Journal of neurotrauma.
[4] N. Knuckey,et al. Efficacy of mild hypothermia (35°C) and moderate hypothermia (33°C) with and without magnesium when administered 30min post-reperfusion after 90min of middle cerebral artery occlusion in Spontaneously Hypertensive rats , 2013, Brain Research.
[5] H. Feuer,et al. Second impact syndrome in football: new imaging and insights into a rare and devastating condition. , 2013, Journal of neurosurgery. Pediatrics.
[6] Thomas Geeraerts,et al. Brain Temperature: Physiology and Pathophysiology after Brain Injury , 2012, Anesthesiology research and practice.
[7] J. Povlishock,et al. Intensity- and interval-specific repetitive traumatic brain injury can evoke both axonal and microvascular damage. , 2012, Journal of neurotrauma.
[8] X. Mei,et al. Mild Hypothermia Attenuates Mitochondrial Oxidative Stress by Protecting Respiratory Enzymes and Upregulating MnSOD in a Pig Model of Cardiac Arrest , 2012, PloS one.
[9] J. Povlishock,et al. The combination of either tempol or FK506 with delayed hypothermia: implications for traumatically induced microvascular and axonal protection. , 2011, Journal of neurotrauma.
[10] D. Brody,et al. Repetitive Closed-Skull Traumatic Brain Injury in Mice Causes Persistent Multifocal Axonal Injury and Microglial Reactivity , 2011, Journal of neuropathology and experimental neurology.
[11] T. Covassin,et al. Early Indicators of Enduring Symptoms in High School Athletes With Multiple Previous Concussions , 2011, Neurosurgery.
[12] J. Povlishock,et al. Combinational Therapy Using Hypothermia and the Immunophilin Ligand FK506 to Target Altered Pial Arteriolar Reactivity, Axonal Damage, and Blood–Brain Barrier Dysfunction after Traumatic Brain Injury in Rat , 2011, Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism.
[13] Mao-tsun Lin,et al. Attenuation of Brain Nitrostative and Oxidative Damage by Brain Cooling during Experimental Traumatic Brain Injury , 2011, Journal of biomedicine & biotechnology.
[14] C. Wilcox. Effects of tempol and redox-cycling nitroxides in models of oxidative stress. , 2010, Pharmacology & therapeutics.
[15] J. Khan,et al. QTc prolongation during therapeutic hypothermia: are we giving it the attention it deserves? , 2010, Europace : European pacing, arrhythmias, and cardiac electrophysiology : journal of the working groups on cardiac pacing, arrhythmias, and cardiac cellular electrophysiology of the European Society of Cardiology.
[16] K. Polderman,et al. Mechanisms of action, physiological effects, and complications of hypothermia , 2009, Critical care medicine.
[17] R. Vink,et al. The second impact syndrome , 2009, Forensic science, medicine, and pathology.
[18] J. Povlishock,et al. Cerebral vascular responsiveness after experimental traumatic brain injury: the beneficial effects of delayed hypothermia combined with superoxide dismutase administration. , 2008, Journal of neurosurgery.
[19] T. Tamiya,et al. Effect of delayed mild brain hypothermia on edema formation after intracerebral hemorrhage in rats. , 2008, Journal of stroke and cerebrovascular diseases : the official journal of National Stroke Association.
[20] Roberto Delfini,et al. Temporal window of metabolic brain vulnerability to concussion: a pilot 1H-magnetic resonance spectroscopic study in concussed athletes--part III. , 2008, Neurosurgery.
[21] E. Hall,et al. Neuroprotective Effects of Tempol, a Catalytic Scavenger of Peroxynitrite-Derived Free Radicals, in a Mouse Traumatic Brain Injury Model , 2008, Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism.
[22] R. Koehler,et al. Rapid NMDA receptor phosphorylation and oxidative stress precede striatal neurodegeneration after hypoxic ischemia in newborn piglets and are attenuated with hypothermia , 2008, International Journal of Developmental Neuroscience.
[23] N. Carney,et al. Hypothermia treatment for traumatic brain injury: a systematic review and meta-analysis. , 2008, Journal of neurotrauma.
[24] Antonio Belli,et al. TEMPORAL WINDOW OF METABOLIC BRAIN VULNERABILITY TO CONCUSSIONS: OXIDATIVE AND NITROSATIVE STRESSES—PART II , 2007, Neurosurgery.
[25] E. Hall,et al. Peroxynitrite‐mediated oxidative damage to brain mitochondria: Protective effects of peroxynitrite scavengers , 2007, Journal of neuroscience research.
[26] Antonio Belli,et al. TEMPORAL WINDOW OF METABOLIC BRAIN VULNERABILITY TO CONCUSSIONS: MITOCHONDRIAL‐RELATED IMPAIRMENT—PART I , 2007, Neurosurgery.
[27] R. Raghupathi,et al. Basic science; repetitive mild non-contusive brain trauma in immature rats exacerbates traumatic axonal injury and axonal calpain activation: a preliminary report. , 2007, Journal of neurotrauma.
[28] B. Jordan,et al. Prolonged Effects of Concussion in High School Athletes , 2005, Neurosurgery.
[29] R. Delfini,et al. Hypothesis of the Postconcussive Vulnerable Brain: Experimental Evidence of Its Metabolic Occurrence , 2005, Neurosurgery.
[30] Valeria Conte,et al. Temporal Window of Vulnerability to Repetitive Experimental Concussive Brain Injury , 2005, Neurosurgery.
[31] S. Margulies,et al. Traumatic axonal injury is exacerbated following repetitive closed head injury in the neonatal pig. , 2004, Journal of neurotrauma.
[32] J. Povlishock,et al. Posttraumatic hypothermia followed by slow rewarming protects the cerebral microcirculation. , 2003, Journal of neurotrauma.
[33] M. Shigemori,et al. OPTIMAL TEMPERATURE FOR THE MANAGEMENT OF SEVERE TRAUMATIC BRAIN INJURY: EFFECT OF HYPOTHERMIA ON INTRACRANIAL PRESSURE, SYSTEMIC AND INTRACRANIAL HEMODYNAMICS, AND METABOLISM , 2007, Neurosurgery.
[34] Grant L Iverson,et al. Cumulative Effects of Concussion in High School Athletes , 2002, Neurosurgery.
[35] J. Povlishock,et al. The Immunophilin Ligand FK506 Attenuates the Axonal Damage Associated with Rapid Rewarming Following Posttraumatic Hypothermia , 2001, Experimental Neurology.
[36] K.,et al. Mild head injury increasing the brain's vulnerability to a second concussive impact. , 2001, Journal of neurosurgery.
[37] D. Okonkwo,et al. The immunophilin ligand FK506 attenuates axonal injury in an impact-acceleration model of traumatic brain injury. , 2001, Journal of neurotrauma.
[38] K. Polderman,et al. Hypophosphatemia and hypomagnesemia induced by cooling in patients with severe head injury. , 2001, Journal of neurosurgery.
[39] G. Allen,et al. Conditioning effects of repetitive mild neurotrauma on motor function in an animal model of focal brain injury , 2000, Neuroscience.
[40] C. Piantadosi,et al. Brain Temperature Alters Hydroxyl Radical Production during Cerebral Ischemia/Reperfusion in Rats , 1996, Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism.
[41] A. Schubert,et al. Side Effects of Mild Hypothermia , 1995, Journal of neurosurgical anesthesiology.
[42] M. Moskowitz,et al. Oxygen radicals in cerebral ischemia. , 1992, The American journal of physiology.
[43] Val L. Richey-Klein,et al. Concussion in sports: Guidelines for The prevention of catastrophic outcome , 1992 .
[44] H. Kontos,et al. Superoxide production in experimental brain injury. , 1986, Journal of neurosurgery.
[45] D. Geffen. Repeat Traumatic Brain Injury in the Juvenile Rat Is Associated with Increased Axonal Injury and Cognitive Impairments , 2016 .
[46] Mao-tsun Lin,et al. Attenuation of Brain Nitrosative and Oxidative Damage by Brain Cooling during Experimental Traumatic Brain Injury , 2014 .
[47] D. Hovda,et al. Repeated mild traumatic brain injury: mechanisms of cerebral vulnerability. , 2013, Journal of neurotrauma.
[48] E. Hall,et al. Antioxidant therapies for traumatic brain injury , 2011, Neurotherapeutics.
[49] M. Shigemori,et al. Effect of 35 degrees C hypothermia on intracranial pressure and clinical outcome in patients with severe traumatic brain injury. , 2009, The Journal of trauma.
[50] E. Hall,et al. Mild pre- and posttraumatic hypothermia attenuates blood-brain barrier damage following controlled cortical impact injury in the rat. , 1996, Journal of neurotrauma.