Low-level blast exposure disrupts gliovascular and neurovascular connections and induces a chronic vascular pathology in rat brain
暂无分享,去创建一个
P. Hof | R. McCarron | S. Ahlers | G. Elder | R. De Gasperi | S. Gandy | W. Janssen | M. A. Gama Sosa | Rajaram K. Manoharan | S. Tappan | A. Tschiffely | Pierce L Janssen | G. P. Perez Garcia | G. Perez | Courtney Searcy | Danielle Vargas | Alicia Spencer | Benjamin Ache | Russell Hanson | Samuel Gandy | Russell W. Hanson | Pierce L. Janssen | Georgina S. Perez Garcia | Anna E. Tschiffely
[1] P. Hof,et al. Blast-induced "PTSD": Evidence from an animal model , 2019, Neuropharmacology.
[2] M. Midwinter,et al. Combat vascular injury: Influence of mechanism of injury on outcome. , 2019, Injury.
[3] Blast exposure elicits blood-brain barrier disruption and repair mediated by tight junction integrity and nitric oxide dependent processes , 2018, Scientific Reports.
[4] S. Ahlers,et al. Chronic post-traumatic stress disorder-related traits in a rat model of low-level blast exposure , 2018, Behavioural Brain Research.
[5] R. McCarron,et al. PTSD-Related Behavioral Traits in a Rat Model of Blast-Induced mTBI Are Reversed by the mGluR2/3 Receptor Antagonist BCI-838 , 2018, eNeuro.
[6] Margaret A. Parsley,et al. Effects of Mild Blast Traumatic Brain Injury on Cerebral Vascular, Histopathological, and Behavioral Outcomes in Rats , 2017, Journal of neurotrauma.
[7] Ulrich H. Leiste,et al. Rat Model of Brain Injury to Occupants of Vehicles Targeted by Land Mines: Mitigation by Elastomeric Frame Designs. , 2017, Journal of neurotrauma.
[8] P. Hof,et al. Lack of chronic neuroinflammation in the absence of focal hemorrhage in a rat model of low-energy blast-induced TBI , 2017, Acta Neuropathologica Communications.
[9] C. Iadecola. The Neurovascular Unit Coming of Age: A Journey through Neurovascular Coupling in Health and Disease , 2017, Neuron.
[10] J. Simard,et al. Glibenclamide pretreatment protects against chronic memory dysfunction and glial activation in rat cranial blast traumatic brain injury , 2017, Behavioural Brain Research.
[11] C. Rosen,et al. A mouse Model of Focal Vascular Injury Induces Astrocyte Reactivity, Tau Oligomers, and Aberrant Behavior , 2017, Archives of neuroscience.
[12] P. Arun,et al. Cerebrospinal Fluid Chemokine (C-C Motif) Ligand 2 Is an Early-Response Biomarker for Blast-Overpressure-Wave-Induced Neurotrauma in Rats. , 2017, Journal of neurotrauma.
[13] S. Ahlers,et al. Exposure to a Predator Scent Induces Chronic Behavioral Changes in Rats Previously Exposed to Low-level Blast: Implications for the Relationship of Blast-Related TBI to PTSD , 2016, Front. Neurol..
[14] C. Balaban,et al. Intracranial venous injury, thrombosis and repair as hallmarks of mild blast traumatic brain injury in rats: Lessons from histological and immunohistochemical studies of decalcified sectioned heads and correlative microarray analysis , 2016, Journal of Neuroscience Methods.
[15] D. Perl,et al. Characterisation of interface astroglial scarring in the human brain after blast exposure: a post-mortem case series , 2016, The Lancet Neurology.
[16] N. Chandra,et al. Primary blast causes mild, moderate, severe and lethal TBI with increasing blast overpressures: Experimental rat injury model , 2016, Scientific Reports.
[17] T. Walilko,et al. Repeated Low-Level Blast Exposure: A Descriptive Human Subjects Study. , 2016, Military medicine.
[18] W. Banks,et al. Blast exposure causes dynamic microglial/macrophage responses and microdomains of brain microvessel dysfunction , 2016, Neuroscience.
[19] J. Chen,et al. Damage of vascular endothelial barrier induced by explosive blast and its clinical significance , 2016, Chinese journal of traumatology = Zhonghua chuang shang za zhi.
[20] S. Minoshima,et al. Repetitive blast exposure in mice and combat veterans causes persistent cerebellar dysfunction , 2016, Science Translational Medicine.
[21] C. Rosen,et al. Amelioration of nicotinamide adenine dinucleotide phosphate-oxidase mediated stress reduces cell death after blast-induced traumatic brain injury. , 2015, Translational research : the journal of laboratory and clinical medicine.
[22] M. Cohen-Salmon,et al. Purification of Mouse Brain Vessels. , 2015, Journal of visualized experiments : JoVE.
[23] H. Feng,et al. An open air research study of blast-induced traumatic brain injury to goats. , 2015, Chinese journal of traumatology = Zhonghua chuang shang za zhi.
[24] G. Elder. Update on TBI and Cognitive Impairment in Military Veterans , 2015, Current Neurology and Neuroscience Reports.
[25] G. Elder,et al. Neuronal DNA Methylation Profiling of Blast-Related Traumatic Brain Injury , 2015 .
[26] Ann C. McKee,et al. Antibody against early driver of neurodegeneration cis P-tau blocks brain injury and tauopathy , 2015, Nature.
[27] M. Delp,et al. The functional and structural changes in the basilar artery due to overpressure blast injury , 2015, Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism.
[28] Á. Pascual-Leone,et al. cis p-tau: early driver of brain injury and tauopathy blocked by antibody , 2015, Nature.
[29] D. Agoston,et al. The Temporal Pattern of Changes in Serum Biomarker Levels Reveals Complex and Dynamically Changing Pathologies after Exposure to a Single Low-Intensity Blast in Mice , 2015, Front. Neurol..
[30] A. Courtney,et al. Blast-Associated Shock Waves Result in Increased Brain Vascular Leakage and Elevated ROS Levels in a Rat Model of Traumatic Brain Injury , 2015, PloS one.
[31] P. Hof,et al. Vascular and Inflammatory Factors in the Pathophysiology of Blast-Induced Brain Injury , 2015, Front. Neurol..
[32] D. Alkon,et al. Bryostatin-1 Restores Blood Brain Barrier Integrity following Blast-Induced Traumatic Brain Injury , 2014, Molecular Neurobiology.
[33] S. Ahlers,et al. Effects of Low-Level Blast Exposure on the Nervous System: Is There Really a Controversy? , 2014, Front. Neurol..
[34] C. Rosen,et al. Altering endoplasmic reticulum stress in a model of blast-induced traumatic brain injury controls cellular fate and ameliorates neuropsychiatric symptoms , 2014, Front. Cell. Neurosci..
[35] Hua Feng,et al. Blast-induced traumatic brain injury of goats in confined space , 2014, Neurological research.
[36] Y. Kuang,et al. Emodin Inhibits Inducible Nitric Oxide Synthase in a Rat Model of Craniocerebral Explosive Injury , 2014, Neurochemical Research.
[37] J. Simard,et al. Exposure of the thorax to a sublethal blast wave causes a hydrodynamic pulse that leads to perivenular inflammation in the brain. , 2014, Journal of neurotrauma.
[38] Frank J. Yuk,et al. Selective vulnerability of the cerebral vasculature to blast injury in a rat model of mild traumatic brain injury , 2014, Acta neuropathologica communications.
[39] Yongming Zhang,et al. Hyperbaric Oxygen Therapy Ameliorates Local Brain Metabolism, Brain Edema and Inflammatory Response in a Blast-Induced Traumatic Brain Injury Model in Rabbits , 2014, Neurochemical Research.
[40] J. Searcy,et al. Impact of Age on the Cerebrovascular Proteomes of Wild-Type and Tg-SwDI Mice , 2014, PloS one.
[41] S. DeKosky,et al. Chronic traumatic encephalopathy: clinical‐biomarker correlations and current concepts in pathogenesis , 2014, Molecular Neurodegeneration.
[42] Smooth Muscle Phenotype Switching in Blast Traumatic Brain Injury-Induced Cerebral Vasospasm , 2014, Translational Stroke Research.
[43] C. Rosen,et al. Modeling clinically relevant blast parameters based on scaling principles produces functional & histological deficits in rats , 2013, Experimental Neurology.
[44] Frank J. Yuk,et al. Blast overpressure induces shear-related injuries in the brain of rats exposed to a mild traumatic brain injury , 2013, Acta neuropathologica communications.
[45] N. Chandra,et al. Rat injury model under controlled field-relevant primary blast conditions: acute response to a wide range of peak overpressures. , 2013, Journal of neurotrauma.
[46] 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.
[47] R. Vanderploeg,et al. Variable, not always persistent, postconcussion symptoms after mild TBI in U.S. military service members: a five-year cross-sectional outcome study. , 2013, Journal of neurotrauma.
[48] K. Monson,et al. Distribution of Blood–Brain Barrier Disruption in Primary Blast Injury , 2013, Annals of Biomedical Engineering.
[49] G. Rajkowska,et al. Coverage of Blood Vessels by Astrocytic Endfeet Is Reduced in Major Depressive Disorder , 2013, Biological Psychiatry.
[50] E. Nozik-Grayck,et al. The adventitia: essential regulator of vascular wall structure and function. , 2013, Annual review of physiology.
[51] S. DeKosky,et al. Acute Blast Injury Reduces Brain Abeta in Two Rodent Species , 2012, Front. Neur..
[52] R. McCarron,et al. Blast exposure induces post-traumatic stress disorder-related traits in a rat model of mild traumatic brain injury. , 2012, Journal of neurotrauma.
[53] T. Walilko,et al. Brain injury risk from primary blast , 2012, The journal of trauma and acute care surgery.
[54] Robin O Cleveland,et al. Chronic Traumatic Encephalopathy in Blast-Exposed Military Veterans and a Blast Neurotrauma Mouse Model , 2012, Science Translational Medicine.
[55] C. Bir,et al. Effects of variable blast pressures on blood flow and oxygen saturation in rat brain as evidenced using MRI. , 2012, Magnetic resonance imaging.
[56] Geoffrey S. F. Ling,et al. Effect of blast exposure on the brain structure and cognition in Macaca fascicularis. , 2012, Journal of neurotrauma.
[57] R. McCarron,et al. Assessment of the Effects of Acute and Repeated Exposure to Blast Overpressure in Rodents: Toward a Greater Understanding of Blast and the Potential Ramifications for Injury in Humans Exposed to Blast , 2012, Front. Neur..
[58] P. VandeVord,et al. A temporal evaluation of cytokines in rats after blast exposure. , 2012, Biomedical sciences instrumentation.
[59] Andrew Baird,et al. The Proteome of Mouse Brain Microvessel Membranes and Basal Lamina , 2011, Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism.
[60] Wen-Ta Chiu,et al. A mouse model of blast-induced mild traumatic brain injury , 2011, Experimental Neurology.
[61] Ying Wang,et al. Tightly coupled repetitive blast-induced traumatic brain injury: development and characterization in mice. , 2011, Journal of neurotrauma.
[62] J. Simard,et al. Rodent model of direct cranial blast injury. , 2011, Journal of neurotrauma.
[63] Kevin Kit Parker,et al. Blast-induced phenotypic switching in cerebral vasospasm , 2011, Proceedings of the National Academy of Sciences.
[64] Valerian Kagan,et al. Blast exposure in rats with body shielding is characterized primarily by diffuse axonal injury. , 2011, Journal of neurotrauma.
[65] Zhaohui Li,et al. Low Level Primary Blast Injury in Rodent Brain , 2011, Front. Neur..
[66] R. McCarron,et al. Relationship between orientation to a blast and pressure wave propagation inside the rat brain , 2011, Journal of Neuroscience Methods.
[67] Dexter V. Reneer,et al. A multi-mode shock tube for investigation of blast-induced traumatic brain injury. , 2011, Journal of neurotrauma.
[68] Douglas Losordo,et al. CD34-positive stem cells: in the treatment of heart and vascular disease in human beings. , 2011, Texas Heart Institute journal.
[69] I. Cernak. The Importance of Systemic Response in the Pathobiology of Blast-Induced Neurotrauma , 2010, Front. Neur..
[70] R. McCarron,et al. Increase in blood–brain barrier permeability, oxidative stress, and activated microglia in a rat model of blast‐induced traumatic brain injury , 2010, Journal of neuroscience research.
[71] S. Ahlers,et al. Blast-induced mild traumatic brain injury. , 2010, The Psychiatric clinics of North America.
[72] Bengt R. Johansson,et al. Pericytes regulate the blood–brain barrier , 2010, Nature.
[73] Kenneth C Curley,et al. Morphologic and biochemical characterization of brain injury in a model of controlled blast overpressure exposure. , 2010, The Journal of trauma.
[74] Tao Yang,et al. Development of a rat model for studying blast-induced traumatic brain injury , 2010, Journal of the Neurological Sciences.
[75] P. Hof,et al. Age-related vascular pathology in transgenic mice expressing presenilin 1-associated familial Alzheimer's disease mutations. , 2010, The American journal of pathology.
[76] S. DeKosky,et al. Traumatic brain injury--football, warfare, and long-term effects. , 2010, The New England journal of medicine.
[77] Carl J Bonnett,et al. Blast injuries , 2009, The Lancet.
[78] Rocco Armonda,et al. An introductory characterization of a combat-casualty-care relevant swine model of closed head injury resulting from exposure to explosive blast. , 2009, Journal of neurotrauma.
[79] A. Courtney,et al. A thoracic mechanism of mild traumatic brain injury due to blast pressure waves. , 2008, Medical hypotheses.
[80] Fredrik Arrhén,et al. Neuropathology and pressure in the pig brain resulting from low-impulse noise exposure. , 2008, Journal of neurotrauma.
[81] P. D’Amore,et al. Arterial versus venous endothelial cells , 2008, Cell and Tissue Research.
[82] P. Tazzari,et al. Thoracic Aortas from Multiorgan Donors Are Suitable for Obtaining Resident Angiogenic Mesenchymal Stromal Cells , 2007, Stem cells.
[83] J. Buxbaum,et al. Pepsin pretreatment allows collagen IV immunostaining of blood vessels in adult mouse brain , 2007, Journal of Neuroscience Methods.
[84] Richard M. McCarron,et al. Measurement of blast wave by a miniature fiber optic pressure transducer in the rat brain , 2007, Journal of Neuroscience Methods.
[85] James Ecklund,et al. WARTIME TRAUMATIC CEREBRAL VASOSPASM: RECENT REVIEW OF COMBAT CASUALTIES , 2006, Neurosurgery.
[86] W. K. Prusaczyk,et al. Lung injury and recovery after exposure to blast overpressure. , 2006, The Journal of trauma.
[87] E. Hamel. Perivascular nerves and the regulation of cerebrovascular tone. , 2006, Journal of applied physiology.
[88] J. Morrison,et al. Cellular and synaptic distribution of NR2A and NR2B in macaque monkey and rat hippocampus as visualized with subunit-specific monoclonal antibodies , 2005, Experimental Neurology.
[89] Kobi Peleg,et al. Blast injuries. , 2005, The New England journal of medicine.
[90] E. Ling,et al. Ultrastructural changes of macroglial cells in the rat brain following an exposure to a non-penetrative blast. , 1997, Annals of the Academy of Medicine, Singapore.
[91] J. Storm-Mathisen,et al. Glutamate transporters in glial plasma membranes: Highly differentiated localizations revealed by quantitative ultrastructural immunocytochemistry , 1995, Neuron.
[92] O. Ottersen,et al. Antisera to Glutathione: Characterization and Immunocytochemical Application to the Rat Cerebellum , 1994, The European journal of neuroscience.
[93] A. Verkleij,et al. Freeze-substitution and Lowicryl HM20 embedding of fixed rat brain: suitability for immunogold ultrastructural localization of neural antigens. , 1991, The journal of histochemistry and cytochemistry : official journal of the Histochemistry Society.
[94] D. Heistad,et al. Factors involved in the physiological regulation of the cerebral circulation. , 1984, Reviews of physiology, biochemistry and pharmacology.
[95] O B Paulson,et al. Cerebral autoregulation. , 1984, Stroke.