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M. Donnino, L. Andersen, Tyler Giberson, D. Gaieski, B. Abella, M. Peberdy, J. Rittenberger, C. Callaway, J. Ornato, J. Clore, A. Grossestreuer, J. Salciccioli, M. Cocchi (2014)
Initial Lactate and Lactate Change in Post–Cardiac Arrest: A Multicenter Validation Study*Critical Care Medicine, 42
T. Jansen, J. Bommel, R. Woodward, P. Mulder, J. Bakker (2009)
Association between blood lactate levels, Sequential Organ Failure Assessment subscores, and 28-day mortality during early and late intensive care unit stay: A retrospective observational study*Critical Care Medicine, 37
E. Crouser, M. Julian, D. Blaho, D. Pfeiffer (2002)
Endotoxin-induced mitochondrial damage correlates with impaired respiratory activityCritical Care Medicine, 30
G. Teasdale, B. Jennett (1974)
Assessment of coma and impaired consciousness. A practical scale.Lancet, 2 7872
I. Mustafa, H. Roth, A. Hanafiah, Tarmizi Hakim, M. Anwar, E. Siregar, X. Leverve (2003)
Effect of cardiopulmonary bypass on lactate metabolismIntensive Care Medicine, 29
D. Carden, G. Martin, R. Nowak, C. Foreback, M. Tomlanovich (1985)
Lactic acidosis during closed-chest CPR in dogs.Annals of emergency medicine, 16 12
A. Kliegel, H. Losert, F. Sterz, M. Holzer, A. Zeiner, C. Havel, A. Laggner (2004)
Serial Lactate Determinations for Prediction of Outcome After Cardiac ArrestMedicine, 83
E. Zaidan, N. Sims
Journal of Cerebral Blood Flow and Metabolism Selective Reductions in the Activity of the Pyruvate Dehydrogenase Complex in Mitochondria Isolated from Brain Subregions following Forebrain Ischemia in Rats
L. Becker, T. Aufderheide, R. Geocadin, C. Callaway, R. Lazar, M. Donnino, V. Nadkarni, B. Abella, C. Adrie, R. Berg, R. Merchant, R. O’Connor, D. Meltzer, M. Holm, W. Longstreth, H. Halperin (2011)
Primary Outcomes for Resuscitation Science Studies: A Consensus Statement From the American Heart AssociationCirculation, 124
G. Nichol, Elizabeth Thomas, C. Callaway, J. Hedges, J. Powell, T. Aufderheide, T. Rea, R. Lowe, Todd Brown, J. Dreyer, D. Davis, A. Idris, I. Stiell (2008)
Regional variation in out-of-hospital cardiac arrest incidence and outcome.JAMA, 300 12
S. Laver, C. Farrow, D. Turner, J. Nolan (2004)
Mode of death after admission to an intensive care unit following cardiac arrestIntensive Care Medicine, 30
Kohei Ikeda, Xiaowen Liu, K. Kida, Eizo Marutani, Shuichi Hirai, M. Sakaguchi, L. Andersen, A. Bagchi, M. Cocchi, K. Berg, F. Ichinose, M. Donnino (2016)
Thiamine as a neuroprotective agent after cardiac arrest.Resuscitation, 105
S. Cain (1965)
Appearance of excess lactate in anesthetized dogs during anemic and hypoxic hypoxia.The American journal of physiology, 209 3
K. Hayashida, Masaru Suzuki, N. Yonemoto, S. Hori, Tomoyoshi Tamura, A. Sakurai, Y. Tahara, K. Nagao, A. Yaguchi, N. Morimura (2017)
Early Lactate Clearance Is Associated With Improved Outcomes in Patients With Postcardiac Arrest Syndrome: A Prospective, Multicenter Observational Study (SOS-KANTO 2012 Study)Critical Care Medicine, 45
R. Neumar (2000)
Molecular mechanisms of ischemic neuronal injury.Annals of emergency medicine, 36 5
R. Neumar, J. Nolan, C. Adrie, M. Aibiki, R. Berg, B. Böttiger, C. Callaway, R. Clark, R. Geocadin, E. Jauch, K. Kern, I. Laurent, W. Longstreth, R. Merchant, P. Morley, L. Morrison, V. Nadkarni, M. Peberdy, E. Rivers, A. Rodríguez-Núñez, F. Sellke, C. Spaulding, K. Sunde, T. Hoek (2008)
Post-cardiac arrest syndrome: epidemiology, pathophysiology, treatment, and prognostication. A consensus statement from the International Liaison Committee on Resuscitation (American Heart Association, Australian and New Zealand Council on Resuscitation, European Resuscitation Council, Heart and StrCirculation, 118 23
W. Pulsinelli, D. Levy, T. Duffy (1982)
Regional cerebral blood flow and glucose metabolism following transient forebrain ischemiaAnnals of Neurology, 11
C. Callaway, M. Donnino, E. Fink, R. Geocadin, Eyal Golan, Karl Kern, Marion Leary, William Meurer, M. Peberdy, Trevonne Thompson, Janice Zimmerman (2015)
Part 8: Post–Cardiac Arrest Care 2015 American Heart Association Guidelines Update for Cardiopulmonary Resuscitation and Emergency Cardiovascular CareCirculation, 132
H. Nguyen, M. Loomba, James Yang, G. Jacobsen, K. Shah, R. Otero, A. Suarez, Hemal Parekh, A. Jaehne, Emanuel Rivers (2010)
Early lactate clearance is associated with biomarkers of inflammation, coagulation, apoptosis, organ dysfunction and mortality in severe sepsis and septic shockJournal of Inflammation (London, England), 7
T. Jansen, J. Bommel, J. Bakker (2009)
Blood lactate monitoring in critically ill patients: A systematic health technology assessment *Critical Care Medicine, 37
J. Field, M. Hazinski, M. Sayre, L. Chameides, S. Schexnayder, R. Hemphill, R. Samson, J. Kattwinkel, R. Berg, F. Bhanji, Diana Cave, E. Jauch, P. Kudenchuk, R. Neumar, M. Peberdy, J. Perlman, E. Sinz, A. Travers, M. Berg, J. Billi, B. Eigel, R. Hickey, M. Kleinman, M. Link, L. Morrison, R. O’Connor, M. Shuster, C. Callaway, B. Cucchiara, J. Ferguson, T. Rea, T. Hoek (2010)
Part 1: executive summary: 2010 American Heart Association Guidelines for Cardiopulmonary Resuscitation and Emergency Cardiovascular Care.Circulation, 122 18 Suppl 3
P. Almenoff, J. Leavy, M. Weil, N. Goldberg, D. Vega, E. Rackow (1989)
Prolongation of the half-life of lactate after maximal exercise in patients with hepatic dysfunction.Critical care medicine, 17 9
S. Asgari, Hana Moshirvaziri, F. Scalzo, Nima Ramezan-Arab (2018)
Quantitative measures of EEG for prediction of outcome in cardiac arrest subjects treated with hypothermia: a literature reviewJournal of Clinical Monitoring and Computing, 32
R. Starodub, B. Abella, A. Grossestreuer, F. Shofer, S. Perman, Marion Leary, D. Gaieski (2013)
Association of serum lactate and survival outcomes in patients undergoing therapeutic hypothermia after cardiac arrest.Resuscitation, 84 8
Y. Bogaert, K. Sheu, P. Hof, A. Brown, J. Blass, R. Rosenthal, G. Fiskum (2000)
Neuronal Subclass-Selective Loss of Pyruvate Dehydrogenase Immunoreactivity Following Canine Cardiac Arrest and ResuscitationExperimental Neurology, 161
H. Zhang, J. Vincent (1993)
Oxygen extraction is altered by endotoxin during tamponade-induced stagnant hypoxia in the dog.Circulatory shock, 40 3
P. Vaagenes, M. Ginsberg, U. Ebmeyer, L. Ernster, M. Fischer, S. Gisvold, A. Gurvitch, K. Hossmann, E. Nemoto, A. Radovsky, J. Severinghaus, P. Safar, R. Schlichtig, F. Sterz, T. Tønnessen, R. White, F. Xiao, Yuan Zhou (1996)
Cerebral resuscitation from cardiac arrest: pathophysiologic mechanisms.Critical care medicine, 24 2 Suppl
M. Donnino, Joseph Miller, N. Goyal, M. Loomba, S. Sankey, B. Dolcourt, R. Sherwin, R. Otero, C. Wira (2007)
Effective lactate clearance is associated with improved outcome in post-cardiac arrest patients.Resuscitation, 75 2
D. Brealey, M. Brand, I. Hargreaves, S. Heales, J. Land, R. Smolenski, N. Davies, C. Cooper, M. Singer (2002)
Association between mitochondrial dysfunction and severity and outcome of septic shockThe Lancet, 360
[The current guidelines emphasize that early prognostication of outcome is an essential component of post-cardiac arrest care. Lactate has been studied as an indicator of critical illness severity. Several studies reported that initial lactate level obtained immediately after hospital arrival was an independent predictor of survival and neurological outcomes in patients with post-cardiac arrest syndrome (PCAS). Recent studies also described that serial lactate measurements in early after-hospital admission could be more useful than a single lactate measurement as a predictor of outcome in those patients. Thus, we conducted an ad hoc analysis of the prospective, multicenter observational study to test the hypothesis that early lactate reduction within 6 h after admission could be a prognostic factor for the outcomes in PCAS. Among the eligible patients (n = 1482), the overall 30-day proportions for survival and good neurological outcome were 29.7% and 16.7%, respectively. Among the study patients, there were significant differences in age, ROSC prior to hospital arrival, epinephrine usage during ACLS, mechanical circulatory support, therapeutic hypothermia, and lactate levels at 0 and 6 h among the lactate clearance quartiles. Of note, patients in the quartile 4 group had the highest initial lactate level. Multivariate logistic regression analyses showed that lactate clearance quartile was an independent predictor of the 30-day survival and good neurologic outcome. In the Cox proportional hazards model, the frequency of mortality during 30 days was markedly higher for patients with lactate clearance in the 1st (hazard ratio, 3.12; 95% CI, 2.14–4.53), 2nd (2.13; 1.46–3.11), and 3rd quartile (1.49; 1.01–2.19) than those in the 4th quartile. In summary, effective lactate reduction over the first 6 h of post-cardiac arrest care was associated with survival and good neurologic outcome independent of the initial lactate level.]
Published: Aug 29, 2018
Keywords: Post-cardiac arrest syndrome; Prognostication; Lactate; Lactate clearance
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