Personalized Connectome Mapping to Guide Targeted Therapy and Promote Recovery of Consciousness in the Intensive Care Unit
暂无分享,去创建一个
Steven L. Meisler | David W. Zhou | E. Brown | L. Hochberg | Suk-tak Chan | J. Giacino | B. Edlow | J. Kirsch | K. Solt | A. Foulkes | Y. Bodien | T. Bleck | Sourish Chakravarty | J. Fins | S. Snider | M. Barra | Zachary D. Threlkeld | S. Meisler
[1] K. Shigemi,et al. Cardiopulmonary , 2020, Definitions.
[2] B. Edlow,et al. Stimulant Therapy in Acute Traumatic Brain Injury: Prescribing Patterns and Adverse Event Rates at 2 Level 1 Trauma Centers , 2020, Journal of intensive care medicine.
[3] B. Edlow,et al. Recovery of Functional Independence After Traumatic Transtentorial Herniation With Duret Hemorrhages , 2019, Front. Neurol..
[4] E. Brown,et al. Disruption of the ascending arousal network in acute traumatic disorders of consciousness , 2019, Neurology.
[5] Maneesh C. Patel,et al. Stratifying drug treatment of cognitive impairments after traumatic brain injury using neuroimaging. , 2019, Brain : a journal of neurology.
[6] Andrey Eliseyev,et al. Detection of Brain Activation in Unresponsive Patients with Acute Brain Injury. , 2019, The New England journal of medicine.
[7] Steven Laureys,et al. Therapeutic interventions in patients with prolonged disorders of consciousness , 2019, The Lancet Neurology.
[8] J. Victor,et al. Presynaptic dopamine deficit in minimally conscious state patients following traumatic brain injury. , 2019, Brain : a journal of neurology.
[9] Steven Laureys,et al. Human consciousness is supported by dynamic complex patterns of brain signal coordination , 2019, Science Advances.
[10] B. Edlow,et al. Default mode network dynamics in covert consciousness , 2019, Cortex.
[11] J. Giacino,et al. Disorders of Consciousness due to Traumatic Brain Injury: Functional Status Ten Years Post-Injury. , 2018, Journal of neurotrauma.
[12] Gilles Louppe,et al. Robust EEG-based cross-site and cross-protocol classification of states of consciousness , 2018, Brain : a journal of neurology.
[13] P. Kochanek,et al. Multi-Center Pre-clinical Consortia to Enhance Translation of Therapies and Biomarkers for Traumatic Brain Injury: Operation Brain Trauma Therapy and Beyond , 2018, Front. Neurol..
[14] Alfonso Nieto-Castanon,et al. Functional networks reemerge during recovery of consciousness after acute severe traumatic brain injury , 2018, Cortex.
[15] Emily J. Boyle,et al. Continuous electroencephalography predicts delayed cerebral ischemia after subarachnoid hemorrhage: A prospective study of diagnostic accuracy , 2018, Annals of neurology.
[16] L. Naccache,et al. Survival and consciousness recovery are better in the minimally conscious state than in the vegetative state , 2018, Brain injury.
[17] Ruben G. L. Real,et al. Traumatic brain injury: integrated approaches to improve prevention, clinical care, and research , 2017, The Lancet Neurology.
[18] P. Fisher,et al. Functional MRI for Assessment of the Default Mode Network in Acute Brain Injury , 2017, Neurocritical Care.
[19] O. Wu,et al. Revisiting Grade 3 Diffuse Axonal Injury: Not All Brainstem Microbleeds are Prognostically Equal , 2017, Neurocritical Care.
[20] Elyssa B. Margolis,et al. Ventral tegmental area: cellular heterogeneity, connectivity and behaviour , 2017, Nature Reviews Neuroscience.
[21] D. Brodie,et al. Dynamic regimes of neocortical activity linked to corticothalamic integrity correlate with outcomes in acute anoxic brain injury after cardiac arrest , 2017, Annals of clinical and translational neurology.
[22] Emery N. Brown,et al. Optogenetic activation of dopamine neurons in the ventral tegmental area induces reanimation from general anesthesia , 2016, Proceedings of the National Academy of Sciences.
[23] N. Schiff,et al. Bedside quantitative electroencephalography improves assessment of consciousness in comatose subarachnoid hemorrhage patients , 2016 .
[24] C. Koch,et al. Integrated information theory: from consciousness to its physical substrate , 2016, Nature Reviews Neuroscience.
[25] Steven Laureys,et al. EEG ultradian rhythmicity differences in disorders of consciousness during wakefulness , 2016, Journal of Neurology.
[26] C. Koch,et al. Neural correlates of consciousness: progress and problems , 2016, Nature Reviews Neuroscience.
[27] Thomas Witzel,et al. The Structural Connectome of the Human Central Homeostatic Network , 2016, Brain Connect..
[28] Manuel Schabus,et al. EEG entropy measures indicate decrease of cortical information processing in Disorders of Consciousness , 2016, Clinical Neurophysiology.
[29] J. J. Fins. Rights Come to Mind: Brain Injury, Ethics, and the Struggle for Consciousness , 2015 .
[30] Athena Demertzi,et al. Intrinsic functional connectivity differentiates minimally conscious from unresponsive patients. , 2015, Brain : a journal of neurology.
[31] W. Rosenblum,et al. Immediate, irreversible, posttraumatic coma: a review indicating that bilateral brainstem injury rather than widespread hemispheric damage is essential for its production. , 2015, Journal of neuropathology and experimental neurology.
[32] Nicholas D Schiff,et al. Neuromodulation of the conscious state following severe brain injuries , 2014, Current Opinion in Neurobiology.
[33] S. Jang,et al. Injury of the lower ascending reticular activating system in patients with hypoxic–ischemic brain injury: diffusion tensor imaging study , 2014, Neuroradiology.
[34] Emery N Brown,et al. Electrical Stimulation of the Ventral Tegmental Area Induces Reanimation from General Anesthesia , 2014, Anesthesiology.
[35] Ruth King,et al. conting: AnRPackage for Bayesian Analysis of Complete and Incomplete Contingency Tables , 2014, Journal of Statistical Software.
[36] Idris A. Eckley,et al. changepoint: An R Package for Changepoint Analysis , 2014 .
[37] David J. Sharp,et al. Network dysfunction after traumatic brain injury , 2014, Nature Reviews Neurology.
[38] Steven Laureys,et al. Disorders of consciousness after acquired brain injury: the state of the science , 2014, Nature Reviews Neurology.
[39] P. Kochanek,et al. Pharmacotherapy of Traumatic Brain Injury: State of the Science and the Road Forward: Report of the Department of Defense Neurotrauma Pharmacology Workgroup , 2014 .
[40] Martin A. Lindquist,et al. Detecting functional connectivity change points for single-subject fMRI data , 2013, Front. Comput. Neurosci..
[41] S. Muehlschlegel,et al. Self-Fulfilling Prophecies Through Withdrawal of Care: Do They Exist in Traumatic Brain Injury, Too? , 2013, Neurocritical Care.
[42] David A. Leopold,et al. Dynamic functional connectivity: Promise, issues, and interpretations , 2013, NeuroImage.
[43] Julien Cohen-Adad,et al. The Human Connectome Project and beyond: Initial applications of 300mT/m gradients , 2013, NeuroImage.
[44] G. Tononi,et al. A Theoretically Based Index of Consciousness Independent of Sensory Processing and Behavior , 2013, Science Translational Medicine.
[45] Thomas Benner,et al. Disconnection of the ascending arousal system in traumatic coma. , 2013, Journal of neuropathology and experimental neurology.
[46] Ramona Hicks,et al. Therapy development for diffuse axonal injury. , 2013, Journal of neurotrauma.
[47] S. Gandhi,et al. Dopamine protects neurons against glutamate-induced excitotoxicity , 2013, Cell Death and Disease.
[48] E. Brown,et al. Activation of D1 Dopamine Receptors Induces Emergence from Isoflurane General Anesthesia , 2013, Anesthesiology.
[49] B. Sabatini,et al. Dopaminergic Modulation of Synaptic Transmission in Cortex and Striatum , 2012, Neuron.
[50] G. Dai,et al. Neuroanatomic Connectivity of the Human Ascending Arousal System Critical to Consciousness and Its Disorders , 2012, Journal of neuropathology and experimental neurology.
[51] J. Polimeni,et al. Blipped‐controlled aliasing in parallel imaging for simultaneous multislice echo planar imaging with reduced g‐factor penalty , 2012, Magnetic resonance in medicine.
[52] Emery N Brown,et al. Active Emergence from Propofol General Anesthesia Is Induced by Methylphenidate , 2012, Anesthesiology.
[53] John Whyte,et al. Placebo-controlled trial of amantadine for severe traumatic brain injury. , 2012, The New England journal of medicine.
[54] Donald H. Lee,et al. Disruptions of functional connectivity in the default mode network of comatose patients , 2012, Neurology.
[55] Jonathan D. Victor,et al. Determination of awareness in patients with severe brain injury using EEG power spectral analysis , 2011, Clinical Neurophysiology.
[56] M. Meade,et al. Mortality associated with withdrawal of life-sustaining therapy for patients with severe traumatic brain injury: a Canadian multicentre cohort study , 2011, Canadian Medical Association Journal.
[57] Emery N. Brown,et al. Methylphenidate Actively Induces Emergence from General Anesthesia , 2011, Anesthesiology.
[58] Emery N. Brown,et al. Tracking brain states under general anesthesia by using global coherence analysis , 2011, Proceedings of the National Academy of Sciences.
[59] Olaf Sporns,et al. Complex network measures of brain connectivity: Uses and interpretations , 2010, NeuroImage.
[60] Chiang-shan R. Li,et al. Biological markers of the effects of intravenous methylphenidate on improving inhibitory control in cocaine-dependent patients , 2010, Proceedings of the National Academy of Sciences.
[61] L. Santoro,et al. Late recovery after traumatic, anoxic, or hemorrhagic long-lasting vegetative state , 2010, Neurology.
[62] Guy B. Williams,et al. Aetiological differences in neuroanatomy of the vegetative state: insights from diffusion tensor imaging and functional implications , 2010, Journal of Neurology, Neurosurgery & Psychiatry.
[63] M. Boly,et al. Default network connectivity reflects the level of consciousness in non-communicative brain-damaged patients. , 2010, Brain : a journal of neurology.
[64] Martin A. Lindquist,et al. Modeling state-related fMRI activity using change-point theory , 2007, NeuroImage.
[65] Bruce D. McCandliss,et al. Possible axonal regrowth in late recovery from the minimally conscious state. , 2006, The Journal of clinical investigation.
[66] J. Changeux,et al. Opinion TRENDS in Cognitive Sciences Vol.10 No.5 May 2006 Conscious, preconscious, and subliminal processing: a testable taxonomy , 2022 .
[67] S. J. Gatley,et al. Temporal relationships between the pharmacokinetics of methylphenidate in the human brain and its behavioral and cardiovascular effects , 2005, Psychopharmacology.
[68] J. Giacino,et al. The JFK Coma Recovery Scale-Revised: measurement characteristics and diagnostic utility. , 2004, Archives of physical medicine and rehabilitation.
[69] H. Coslett,et al. Effects of Methylphenidate on Attention Deficits After Traumatic Brain Injury: A Multidimensional, Randomized, Controlled Trial , 2004, American journal of physical medicine & rehabilitation.
[70] L. Judd,et al. Comparison of oral and intravenous methylphenidate , 1978, Psychopharmacology.
[71] G. Geffen,et al. Role of monoamine pathways in attention and effort: Effects of clonidine and methylphenidate in normal adult humans , 2004, Psychopharmacology.
[72] J. Swanson,et al. Serum and brain concentrations of methylphenidate: implications for use and abuse , 2003, Neuroscience & Biobehavioral Reviews.
[73] J. Ornato,et al. Cardiopulmonary resuscitation of adults in the hospital: a report of 14720 cardiac arrests from the National Registry of Cardiopulmonary Resuscitation. , 2003, Resuscitation.
[74] J. Swanson,et al. Cardiovascular effects of methylphenidate in humans are associated with increases of dopamine in brain and of epinephrine in plasma , 2003, Psychopharmacology.
[75] A. Damasio,et al. Consciousness and the brainstem , 2001, Cognition.
[76] W. Poewe,et al. Impaired dopaminergic neurotransmission in patients with traumatic brain injury: a SPET study using 123I-β-CIT and 123I-IBZM , 2000, European Journal of Nuclear Medicine.
[77] G H Glover,et al. Image‐based method for retrospective correction of physiological motion effects in fMRI: RETROICOR , 2000, Magnetic resonance in medicine.
[78] N. Volkow,et al. Methylphenidate and cocaine have a similar in vivo potency to block dopamine transporters in the human brain. , 1999, Life sciences.
[79] N. Volkow,et al. Dopamine transporter occupancies in the human brain induced by therapeutic doses of oral methylphenidate. , 1998, The American journal of psychiatry.
[80] J. Giacino,et al. The Vegetative and Minimally Conscious States: A Comparison of Clinical Features and Functional Outcome , 1997 .
[81] J. Lieberman,et al. Behavioral and cardiovascular effects of intravenous methylphenidate in normal subjects and cocaine abusers , 1997 .
[82] J. Adams,et al. Diffuse axonal injury in head injury: Definition, diagnosis and grading , 1989, Histopathology.
[83] L. Gentry,et al. Traumatic brain stem injury: MR imaging. , 1989, Radiology.
[84] P. Joyce,et al. Endocrine and behavioral responses to methylphenidate in normal subjects , 1986, Biological Psychiatry.
[85] P. Joyce,et al. Methylphenidate increases heart rate, blood pressure and plasma epinephrine in normal subjects. , 1984, Life sciences.
[86] J. Thiessen,et al. Methylphenidate hydrochloride given with or before breakfast: II. Effects on plasma concentration of methylphenidate and ritalinic acid. , 1983, Pediatrics.
[87] M. Dodson,et al. Postoperative effects of methylphenidate. , 1980, British journal of anaesthesia.
[88] A. Ommaya,et al. Cerebral concussion and traumatic unconsciousness. Correlation of experimental and clinical observations of blunt head injuries. , 1974, Brain : a journal of neurology.
[89] A. S. Gale. THE COMPARATIVE AND ADDITIVE EFFECTS OF METHYLPHENIDATE AND BEMEGRIDE , 1961, Anesthesiology.
[90] J. Carroll,et al. Ritalin® (methylphenidate): clinical experiences , 1959, Canadian Anaesthetists' Society journal.
[91] R. O. Christensen. A new agent for shortening recovery time in oral surgery. , 1958, Oral surgery, oral medicine, and oral pathology.
[92] A. S. Gale. The effect of methylphenidate (ritalin) on thiopental recovery. , 1958, Anesthesiology.
[93] J. Fazekas,et al. Effect of methylphenidate hydrochloride in antagonizing barbiturate‐induced depression , 1958, Neurology.
[94] J. Adriani,et al. Studies on Newer Analeptics and the Comparison of Their Action with Pentylenetetrazole, Nikethamide and Picrotoxin , 1958 .
[95] Carter Ch,et al. Parenteral use of methylphenidate (ritalin). , 1957 .
[96] C. H. Carter,et al. Parenteral use of methylphenidate (ritalin). , 1957, Diseases of the nervous system.