Metabolic and electrolyte disturbance after cardiac arrest: How to deal with it.
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[1] B. Zhivotovsky,et al. Calcium and mitochondria in the regulation of cell death. , 2015, Biochemical and biophysical research communications.
[2] J. Heltne,et al. Cognitive function and health-related quality of life four years after cardiac arrest. , 2015, Resuscitation.
[3] R. Bellomo,et al. A pilot assessment of alpha-stat vs pH-stat arterial blood gas analysis after cardiac arrest. , 2015, Journal of critical care.
[4] A. Romani,et al. Role of Cellular Magnesium in Human Diseases. , 2014, Austin journal of nutrition and food sciences.
[5] J. Finn,et al. Trends in intensive care unit cardiac arrest admissions and mortality in Australia and New Zealand. , 2014, Critical care and resuscitation : journal of the Australasian Academy of Critical Care Medicine.
[6] R. Bellomo,et al. The impact of oxygen and carbon dioxide management on outcome after cardiac arrest , 2014, Current opinion in critical care.
[7] S. Kim,et al. Association of blood glucose at admission with outcomes in patients treated with therapeutic hypothermia after cardiac arrest. , 2014, The American journal of emergency medicine.
[8] R. Bellomo,et al. Targeted temperature management after cardiac arrest. , 2014, The New England journal of medicine.
[9] E. Adrario,et al. Glycaemic variability, infections and mortality in a medical-surgical intensive care unit. , 2014, Critical care and resuscitation : journal of the Australasian Academy of Critical Care Medicine.
[10] M. Wise,et al. Targeted temperature management at 33°C versus 36°C after cardiac arrest. , 2013, The New England journal of medicine.
[11] Ankur Gupta,et al. The impact of severe acidemia on neurologic outcome of cardiac arrest survivors undergoing therapeutic hypothermia. , 2013, Resuscitation.
[12] A. Topjian,et al. Early Lactate Elevations Following Resuscitation From Pediatric Cardiac Arrest Are Associated With Increased Mortality* , 2013, Pediatric critical care medicine : a journal of the Society of Critical Care Medicine and the World Federation of Pediatric Intensive and Critical Care Societies.
[13] M. Bailey,et al. Hyperoxia in the intensive care unit and outcome after out-of-hospital ventricular fibrillation cardiac arrest. , 2013, Critical care and resuscitation : journal of the Australasian Academy of Critical Care Medicine.
[14] J. Nolan,et al. Intensive care unit mortality after cardiac arrest: the relative contribution of shock and brain injury in a large cohort , 2013, Intensive Care Medicine.
[15] Lei Zhan,et al. Antiarrhythmia drugs for cardiac arrest: a systemic review and meta-analysis , 2013, Critical Care.
[16] B. Abella,et al. Association of serum lactate and survival outcomes in patients undergoing therapeutic hypothermia after cardiac arrest. , 2013, Resuscitation.
[17] Y. Kamiya,et al. Blood pH is a useful indicator for initiation of therapeutic hypothermia in the early phase of resuscitation after comatose cardiac arrest: a retrospective study. , 2013, The Journal of emergency medicine.
[18] R. Bellomo,et al. Arterial carbon dioxide tension and outcome in patients admitted to the intensive care unit after cardiac arrest. , 2013, Resuscitation.
[19] S. Trzeciak,et al. Association Between Postresuscitation Partial Pressure of Arterial Carbon Dioxide and Neurological Outcome in Patients With Post–Cardiac Arrest Syndrome , 2013, Circulation.
[20] Yeonho You,et al. Association of blood glucose variability with outcomes in comatose cardiac arrest survivors treated with therapeutic hypothermia. , 2013, The American journal of emergency medicine.
[21] A. Rodríguez-Núñez,et al. Hyperoxia, hypocapnia and hypercapnia as outcome factors after cardiac arrest in children. , 2012, Resuscitation.
[22] M. Georgiou,et al. Association of lactate levels with outcome after in-hospital cardiac arrest. , 2012, Resuscitation.
[23] H. Kirkegaard,et al. Serum Potassium Changes During Therapeutic Hypothermia After Out-of-Hospital Cardiac Arrest-Should It Be Treated? , 2012, Therapeutic hypothermia and temperature management.
[24] Wanchun Tang,et al. Ultrastructural evidence of mitochondrial abnormalities in postresuscitation myocardial dysfunction. , 2012, Resuscitation.
[25] S. Scolletta,et al. Can lactate levels and vasopressors use predict outcome in out-of-hospital cardiac arrest survivors? , 2011, Minerva anestesiologica.
[26] S. Hunziker,et al. The association of lactate and vasopressor need for mortality prediction in survivors of cardiac arrest. , 2011, Minerva anestesiologica.
[27] H. Hirasawa,et al. Blood ammonia and lactate levels on hospital arrival as a predictive biomarker in patients with out-of-hospital cardiac arrest. , 2011, Resuscitation.
[28] Roger D. White,et al. Hypokalemia during the cooling phase of therapeutic hypothermia and its impact on arrhythmogenesis. , 2010, Resuscitation.
[29] J. Soar,et al. European Resuscitation Council Guidelines for Resuscitation 2010 Section 1. Executive summary. , 2010, Resuscitation.
[30] J. Soar,et al. European Resuscitation Council Guidelines for Resuscitation 2010 Section 4. Adult advanced life support. , 2010, Resuscitation.
[31] N. Madias,et al. Metabolic acidosis: pathophysiology, diagnosis and management , 2010, Nature Reviews Nephrology.
[32] S. V. Cromphaut,et al. Hyperglycaemia as part of the stress response: the underlying mechanisms. , 2009 .
[33] K. Polderman. Mechanisms of action, physiological effects, and complications of hypothermia , 2009, Critical care medicine.
[34] D. Beiser,et al. Derangements in blood glucose following initial resuscitation from in-hospital cardiac arrest: a report from the national registry of cardiopulmonary resuscitation. , 2009, Resuscitation.
[35] Deborah J. Cook,et al. Intensive insulin therapy and mortality among critically ill patients: a meta-analysis including NICE-SUGAR study data , 2009, Canadian Medical Association Journal.
[36] Stephane Heritier,et al. Intensive versus conventional glucose control in critically ill patients. , 2009, The New England journal of medicine.
[37] T. Sakamoto,et al. Relationship between laboratory findings and the outcome of cardiopulmonary arrest. , 2009, The American journal of emergency medicine.
[38] B. Schneeweiss,et al. The strong ion gap and outcome after cardiac arrest in patients treated with therapeutic hypothermia: a retrospective study , 2009, Intensive Care Medicine.
[39] R. Neumar,et al. Post-cardiac arrest syndrome: epidemiology, pathophysiology, treatment, and prognostication. A Scientific Statement from the International Liaison Committee on Resuscitation; the American Heart Association Emergency Cardiovascular Care Committee; the Council on Cardiovascular Surgery and Anesthesia; , 2008, Resuscitation.
[40] A. Zaritsky,et al. Magnesium in cardiopulmonary resuscitation: critical review. , 2008, Resuscitation.
[41] M. Holzer,et al. Strict normoglycaemic blood glucose levels in the therapeutic management of patients within 12h after cardiac arrest might not be necessary. , 2008, Resuscitation.
[42] J. Nolan,et al. Outcome following admission to UK intensive care units after cardiac arrest: a secondary analysis of the ICNARC Case Mix Programme Database * , 2007, Anaesthesia.
[43] M. Donnino,et al. Effective lactate clearance is associated with improved outcome in post-cardiac arrest patients. , 2007, Resuscitation.
[44] V. Pettilä,et al. Strict versus moderate glucose control after resuscitation from ventricular fibrillation , 2007, Intensive Care Medicine.
[45] Michael E. Cain,et al. Sudden cardiac death: Epidemiologic and financial worldwide perspective , 2007, Journal of Interventional Cardiac Electrophysiology.
[46] D. Milliss,et al. Survival after out-of-hospital cardiac arrest in Sydney, Australia. , 2006, Critical care and resuscitation : journal of the Australasian Academy of Critical Care Medicine.
[47] Max Harry Weil,et al. Microcirculation during cardiac arrest and resuscitation , 2006, Critical care medicine.
[48] J. Kraut,et al. Use of base in the treatment of acute severe organic acidosis by nephrologists and critical care physicians: results of an online survey , 2006, Clinical and Experimental Nephrology.
[49] G. Van den Berghe,et al. Intensive insulin therapy in the medical ICU. , 2006, The New England journal of medicine.
[50] R. Bellomo,et al. A quantitative analysis of the acidosis of cardiac arrest: a prospective observational study , 2005, Critical care.
[51] P. Garnier,et al. Acidosis Causes Endoplasmic Reticulum Stress and Caspase-12-Mediated Astrocyte Death , 2005, Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism.
[52] M. Holzer,et al. Serial Lactate Determinations for Prediction of Outcome After Cardiac Arrest , 2004, Medicine.
[53] N. Day,et al. Unidentified acids of strong prognostic significance in severe malaria* , 2004, Critical care medicine.
[54] M. Holzer,et al. Brain function after resuscitation from cardiac arrest. , 2004, Current opinion in critical care.
[55] J. Kellum,et al. Initial pH, base deficit, lactate, anion gap, strong ion difference, and strong ion gap predict outcome from major vascular injury* , 2004, Critical care medicine.
[56] V. Pettilä,et al. A multiple logistic regression analysis of in-hospital factors related to survival at six months in patients resuscitated from out-of-hospital ventricular fibrillation. , 2003, Resuscitation.
[57] J. Reitsma,et al. Survival and recovery of consciousness in anoxic-ischemic coma after cardiopulmonary resuscitation , 2003, Intensive Care Medicine.
[58] M. Copass,et al. Randomized clinical trial of magnesium, diazepam, or both after out-of-hospital cardiac arrest , 2002, Neurology.
[59] S. Verma,et al. Fundamentals of reperfusion injury for the clinical cardiologist. , 2002, Circulation.
[60] C. Jagger,et al. A randomised trial to investigate the efficacy of magnesium sulphate for refractory ventricular fibrillation , 2002, Emergency medicine journal : EMJ.
[61] B A Mizock,et al. Alterations in fuel metabolism in critical illness: hyperglycaemia. , 2001, Best practice & research. Clinical endocrinology & metabolism.
[62] J. Smolle,et al. Comparison of lactate or BE during out-of-hospital cardiac arrest to determine metabolic acidosis. , 2001, Resuscitation.
[63] G. V. Berghe,et al. Intensive insulin therapy in critically ill patients. , 2001, The New England journal of medicine.
[64] R. Lavery,et al. Magnesium sulfate in the treatment of refractory ventricular fibrillation in the prehospital setting. , 2001, Resuscitation.
[65] L. Leung,et al. O UT-OF-HOSPITAL C ARDIAC A RREST IN H ONG K ONG , 2001, Prehospital emergency care : official journal of the National Association of EMS Physicians and the National Association of State EMS Directors.
[66] P. Havens,et al. Unmeasured anions identified by the Fencl-Stewart method predict mortality better than base excess, anion gap, and lactate in patients in the pediatric intensive care unit. , 1999, Critical care medicine.
[67] W. Fawcett,et al. Magnesium: physiology and pharmacology. , 1999, British journal of anaesthesia.
[68] B. Kahn,et al. Glucose transporters and insulin action--implications for insulin resistance and diabetes mellitus. , 1999, The New England journal of medicine.
[69] F. Sterz,et al. The association between blood lactate concentration on admission, duration of cardiac arrest, and functional neurological recovery in patients resuscitated from ventricular fibrillation , 1997, Intensive Care Medicine.
[70] D. Fatovich,et al. Magnesium in cardiac arrest (the magic trial). , 1997, Resuscitation.
[71] F. Sterz,et al. Blood Glucose Concentration after Cardiopulmonary Resuscitation Influences Functional Neurological Recovery in Human Cardiac Arrest Survivors , 1997, Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism.
[72] B. Siesjö,et al. Acidosis Induced by Hypercapnia Exaggerates Ischemic Brain Damage , 1994, Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism.
[73] C. Brown,et al. The effect of intravenous magnesium administration on aortic, right atrial and coronary perfusion pressures during CPR in swine. , 1993, Resuscitation.
[74] M. Weil,et al. Redefining ischemia due to circulatory failure as dual defects of oxygen deficits and of carbon dioxide excesses , 1991, Critical care medicine.
[75] S. Gando,et al. A comparison of serum ionized calcium in arterial and mixed venous blood during CPR , 1990 .
[76] G. Brooks,et al. Defining hypoxia: a systems view of VO2, glycolysis, energetics, and intracellular PO2. , 1990, Journal of applied physiology.
[77] M. Eisenberg. Electrolyte measurements during inhospital cardiopulmonary resuscitation , 1990, Critical care medicine.
[78] M. Weil,et al. Myocardial acidosis associated with CO2 production during cardiac arrest and resuscitation. , 1989, Circulation.
[79] E. Capparelli,et al. Differences in systemic and myocardial blood acid-base status during cardiopulmonary resuscitation. , 1989, Critical care medicine.
[80] P. Urban,et al. Cardiac arrest and blood ionized calcium levels. , 1988, Annals of internal medicine.
[81] B. Siesjö,et al. Acidosis and ischemic brain damage. , 1988, Neurochemical pathology.
[82] J. Ruedy,et al. Should calcium be used in cardiac arrest? , 1986, The American journal of medicine.
[83] L. Cobb,et al. Hypokalemia after resuscitation from out-of-hospital ventricular fibrillation. , 1982, JAMA.
[84] J. Ruskin,et al. Out-of-hospital cardiac arrest: electrophysiologic observations and selection of long-term antiarrhythmic therapy. , 1980, The New England journal of medicine.
[85] A. Członkowska,et al. Neuropsychological and neurological sequelae of out-of-hospital cardiac arrest and the estimated need for neurorehabilitation: a prospective pilot study. , 2014, Kardiologia polska.
[86] L. Wiklund,et al. Central nervous tissue damage after hypoxia and reperfusion in conjunction with cardiac arrest and cardiopulmonary resuscitation: mechanisms of action and possibilities for mitigation. , 2012, International review of neurobiology.
[87] J. Rosborough,et al. Hypocalcemia following resuscitation from cardiac arrest revisited. , 2010, Resuscitation.
[88] K. Chien,et al. Postresuscitation myocardial dysfunction: correlated factors and prognostic implications , 2006, Intensive Care Medicine.
[89] A. Bacher. Effects of body temperature on blood gases , 2004, Intensive Care Medicine.
[90] B. Bistrian,et al. Intensive insulin therapy in critically ill patients. , 2002, The New England journal of medicine.
[91] B. Altura. Introduction: importance of Mg in physiology and medicine and the need for ion selective electrodes. , 1994, Scandinavian journal of clinical and laboratory investigation. Supplementum.
[92] P. Calle,et al. Serum electrolyte disturbances in the post-resuscitation period. The Cerebral Resuscitation Study Group. , 1989, Resuscitation.
[93] E. Ruiz,et al. Frequency of hypokalemia after successfully resuscitated out-of-hospital cardiac arrest compared with that in transmural acute myocardial infarction. , 1987, The American journal of cardiology.
[94] B. Siesjö. Acid-base homeostasis in the brain: physiology, chemistry, and neurochemical pathology. , 1985, Progress in brain research.
[95] D. Propp,et al. Calcium and its role in cardiac arrest: understanding the controversy. , 1985, Journal of Emergency Medicine.