Cardiopulmonary Resuscitation and Rescue Therapies.


Journal

Critical care medicine
ISSN: 1530-0293
Titre abrégé: Crit Care Med
Pays: United States
ID NLM: 0355501

Informations de publication

Date de publication:
01 09 2021
Historique:
pubmed: 15 7 2021
medline: 29 9 2021
entrez: 14 7 2021
Statut: ppublish

Résumé

The history of cardiopulmonary resuscitation and the Society of Critical Care Medicine have much in common, as many of the founders of the Society of Critical Care Medicine focused on understanding and improving outcomes from cardiac arrest. We review the history, the current, and future state of cardiopulmonary resuscitation.

Identifiants

pubmed: 34259654
doi: 10.1097/CCM.0000000000005106
pii: 00003246-202109000-00001
doi:

Types de publication

Historical Article Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

1375-1388

Subventions

Organisme : NINDS NIH HHS
ID : R01 NS105721
Pays : United States

Informations de copyright

Copyright © 2021 by the Society of Critical Care Medicine and Wolters Kluwer Health, Inc. All Rights Reserved.

Déclaration de conflit d'intérêts

Dr. Dalton received funding from Innovative ECMO Concepts, Inc; she disclosed the off-label product use of new resuscitative tools and monitoring equipment. Dr. Tisherman disclosed that he is the coauthor of a patent for “Emergency Preservation and Resuscitation Method”; he disclosed the off-label product use of normal saline and cardiopulmonary bypass equipment; he is supported by U.S. Army Medical Acquisition Activity (W81XWH1810601). Dr. Thiagarajan’s institution received funding from Bristol Myers Squibb and Pfizer; he received funding from Advocate Children’s Hospital. Dr. Alexander’s institution received funding from Novartis; she received finding from Instrumentation Laboratories; she disclosed the off-label product use of extracorporeal membrane oxygenation under extracorporeal cardiopulmonary resuscitation conditions. Dr. Kochanek received funding from Pediatric Critical Care Medicine for serving as the Editor-in-Chief, the National Institutes of Health, and the U.S. Army; he disclosed he is a patent holder for the United States Invention Disclosure, “Method to improve neurologic outcomes in temperature managed patients” (No. 62/164,205), the United States Invention Disclosure, “Small Molecule Inhibitors of RNA Binding MOTIF Proteins for the Treatment of Acute Cellular Injury” and the United States Patent 8,628,512 B2, “Method of Inducing EPR Following Cardiopulmonary Arrest”. Dr. Kochanek is supported by NS105721 from the National Institutes of Neurologic Disorders and Stroke/the National Institutes of Health, and the American Heart Association (18TPA34170553). The remaining authors have disclosed that they do not have any potential conflicts of interest.

Références

Genesis 1:7, Life Application Bible. 1991Grand Rapids, MI, Hagerstown, MDZondervan
Kochanek PM, Grenvik A: A tribute to peter J. Safar, MD. Crit Care Med 2003; 31:2571–2573
Tang W, Sun: Resuscitation great. Max Harry (Hal) Weil - a leader, mentor, friend, and wonderful colleague. Resuscitation 2011; 82:1481–1482.
Kouwenhoven WB, Jude JR, Knickerbocker GG: Closed-chest cardiac massage. JAMA 1960; 173:1064–1067
Safar P, Escarraga LA, Elam JO: A comparison of the mouth-to-mouth and mouth-to-airway methods of artificial respiration with the chest-pressure arm-lift methods. N Engl J Med 1958; 258:671–677
Safar P, Brown TC, Holtey WJ, et al.: Ventilation and circulation with closed-chest cardiac massage in man. JAMA 1961; 176:574–576
Cardiopulmonary resuscitation: Statement by the ad hoc committee on cardiopulmonary resuscitation of the division of medical sciences, national academy of sciences—national research council. JAMA 1966; 198:372–379
Safar P: Cerebral resuscitation after cardiac arrest: A review. Circulation 1986; 74:IV138–IV153
Safar PaB, Nicholas GCardiopulmonary Cerebral Resuscitation. 1988, Third EditionPhiladelphiaWB Saunders Company Ltd, p 464
Jastremski M, Sutton-Tyrrell K, Vaagenes P, et al.: Glucocorticoid treatment does not improve neurological recovery following cardiac arrest. Brain resuscitation clinical trial i study group. JAMA 1989; 262:3427–3430
BrainResuscitation Clinical Trial II Study Group: A randomized clinical study of a calcium-entry blocker (lidoflazine) in the treatment of comatose survivors of cardiac arrest. N Engl J Med 1991; 324:1225–1231
Brain Resuscitation Clinical Trial I Study Group: Randomized clinical study of thiopental loading in comatose survivors of cardiac arrest. N Engl J Med 1986; 314:397–403
Baskett PJ, Peter J: Safar, the early years 1924-1961, the birth of CPR. Resuscitation 2001; 50:17–22
Baskett P, Peter J: Safar. Resuscitation 2003; 59:3–5
Vincent JL: Obituary: Dr Max Harry Weil. Crit Care 2011; 15:192
Chernow B, Carlson RW, Rackow EC: Giants of critical care: A tribute to Max Harry Weil, MD, PhD. Crit Care Med 1992; 20:915–916
Max Harry (Hal) Weil, MD, PhD, ScD (hon) MACP Master, FCCP, FACC, FCCM, FAHA 1927 to 2011. J Crit Care 2011; 26:439–440
Tang W, Weil MH, Sun S, et al.: Cardiopulmonary resuscitation by precordial compression but without mechanical ventilation. Am J Respir Crit Care Med 1994; 150:1709–1713
Pellis T, Weil MH, Tang W, et al.: Evidence favoring the use of an alpha2-selective vasopressor agent for cardiopulmonary resuscitation. Circulation 2003; 108:2716–2721
Marn-Pernat A, Weil MH, Tang W, et al.: Optimizing timing of ventricular defibrillation. Crit Care Med 2001; 29:2360–2365
Falk JL, Rackow EC, Weil MH: End-tidal carbon dioxide concentration during cardiopulmonary resuscitation. N Engl J Med 1988; 318:607–611
Ristagno G, Gullo A: Is ventricular fibrillation waveform analysis suitable for optimizing timing of ventricular defibrillation? Yes it is. Crit Care Med 2007; 35:1804–1805
Tang W, Weil MH, Sun S, et al.: Progressive myocardial dysfunction after cardiac resuscitation. Crit Care Med 1993; 21:1046–1050
Fries M, Weil MH, Chang YT, et al.: Microcirculation during cardiac arrest and resuscitation. Crit Care Med 2006; 34:S454–S457
Ristagno G, Sun S, Tang W, et al.: Effects of epinephrine and vasopressin on cerebral microcirculatory flows during and after cardiopulmonary resuscitation. Crit Care Med 2007; 35:2145–2149
Kohn LT, Corrigan JM, Donaldson MS: Committee on quality of healthcare in America IoM.To Err Is Human: Building a Safer Health System. 2000Washington, DC, National Academies Press, In
Nadkarni VM, Larkin GL, Peberdy MA, et al.; National Registry of Cardiopulmonary Resuscitation Investigators: First documented rhythm and clinical outcome from in-hospital cardiac arrest among children and adults. JAMA 2006; 295:50–57
Peberdy MA, Kaye W, Ornato JP, et al.: Cardiopulmonary resuscitation of adults in the hospital: a report of 14720 cardiac arrests from the national registry of cardiopulmonary resuscitation. Resuscitation 2003; 58:297–308
Kilgannon JH, Jones AE, Shapiro NI, et al.; Emergency Medicine Shock Research Network (EMShockNet) Investigators: Association between arterial hyperoxia following resuscitation from cardiac arrest and in-hospital mortality. JAMA 2010; 303:2165–2171
Kilgannon JH, Jones AE, Parrillo JE, et al.; Emergency Medicine Shock Research Network (EMShockNet) Investigators: Relationship between supranormal oxygen tension and outcome after resuscitation from cardiac arrest. Circulation 2011; 123:2717–2722
Chan PS, Krumholz HM, Nichol G, et al.; American Heart Association National Registry of Cardiopulmonary Resuscitation Investigators: Delayed time to defibrillation after in-hospital cardiac arrest. N Engl J Med 2008; 358:9–17
Devita MA, Bellomo R, Hillman K, et al.: Findings of the first consensus conference on medical emergency teams. Crit Care Med 2006; 34:2463–2478
Jones D, Holmes J, Currey J, et al.: Proceedings of the 12 th International conference on rapid response systems and medical emergency teams. Anaesth Intensive Care 2017; 45:511–517
Peberdy MA, Ornato JP, Larkin GL, et al.National registry of cardiopulmonary resuscitation I. Survival from in-hospital cardiac arrest during nights and weekends. JAMA 2008; 299:785–792
Merchant RM, Berg RA, Yang L, et al.; American Heart Association’s Get With the Guidelines-Resuscitation Investigators: Hospital variation in survival after in-hospital cardiac arrest. J Am Heart Assoc 2014; 3:e000400
Edelson DP, Abella BS, Kramer-Johansen J, et al.: Effects of compression depth and pre-shock pauses predict defibrillation failure during cardiac arrest. Resuscitation 2006; 71:137–145
Tisherman SA: Salvage techniques in traumatic cardiac arrest: thoracotomy, extracorporeal life support, and therapeutic hypothermia. Curr Opin Crit Care 2013; 19:594–598
Singal RK, Singal D, Bednarczyk J, et al.: Current and future status of extracorporeal cardiopulmonary resuscitation for in-hospital cardiac arrest. Can J Cardiol 2017; 33:51–60
Lasa JJ, Rogers RS, Localio R, et al.: Extracorporeal cardiopulmonary resuscitation (E-CPR) during pediatric in-hospital cardiopulmonary arrest is associated with improved survival to discharge: A report from the American Heart Association’s Get With The Guidelines-Resuscitation (GWTG-R) registry. Circulation 2016; 133:165–176
Chen YS, Lin JW, Yu HY, et al.: Cardiopulmonary resuscitation with assisted extracorporeal life-support versus conventional cardiopulmonary resuscitation in adults with in-hospital cardiac arrest: An observational study and propensity analysis. Lancet 2008; 372:554–561
Dalton HJ, Siewers RD, Fuhrman BP, et al.: Extracorporeal membrane oxygenation for cardiac rescue in children with severe myocardial dysfunction. Crit Care Med 1993; 21:1020–1028
Böttiger BW, Arntz HR, Chamberlain DA, et al.; TROICA Trial Investigators; European Resuscitation Council Study Group: Thrombolysis during resuscitation for out-of-hospital cardiac arrest. N Engl J Med 2008; 359:2651–2662
Wu KH, Chang CY, Chen YC, et al.: Effectiveness of sodium bicarbonate administration on mortality in cardiac arrest patients: A systematic review and meta-analysis. J Emerg Med 2020; 59:856–864
Aves T, Chopra A, Patel M, et al.: Epinephrine for out-of-hospital cardiac arrest: An updated systematic review and meta-analysis. Crit Care Med 2020; 48:225–229
Olasveengen TM, Mancini ME, Perkins GD, et al.; Adult Basic Life Support Collaborators: Adult basic life support: International consensus on cardiopulmonary resuscitation and emergency cardiovascular care science with treatment recommendations. Resuscitation 2020; 156:A35–A79
Andersen LW, Granfeldt A, Callaway CW, et al.American Heart Association’s Get With The Guidelines–Resuscitation InvestigatorsAssociation between tracheal intubation during adult in-hospital cardiac arrest and survival. JAMA 2017; 317:494–506
Holmberg MJ, Ross CE, Fitzmaurice GM, et al.; American Heart Association’s Get With The Guidelines–Resuscitation Investigators: Annual incidence of adult and pediatric in-hospital cardiac arrest in the United States. Circ Cardiovasc Qual Outcomes 2019; 12:e005580
Perman SM, Stanton E, Soar J, et al.; American Heart Association’s Get With the Guidelines®—Resuscitation (formerly the National Registry of Cardiopulmonary Resuscitation) Investigators: Location of in-hospital cardiac arrest in the United States-variability in event rate and outcomes. J Am Heart Assoc 2016; 5:e003638
Berg RA, Sutton RM, Holubkov R, et al.; Eunice Kennedy Shriver National Institute of Child Health and Human Development Collaborative Pediatric Critical Care Research Network and for the American Heart Association’s Get With the Guidelines-Resuscitation (formerly the National Registry of Cardiopulmonary Resuscitation) Investigators: Ratio of PICU versus ward cardiopulmonary resuscitation events is increasing. Crit Care Med 2013; 41:2292–2297
Girotra S, Cram P, Spertus JA, et al.; American Heart Association’s Get With the Guidelines®-Resuscitation Investigators: Hospital variation in survival trends for in-hospital cardiac arrest. J Am Heart Assoc 2014; 3:e000871
Girotra S, Spertus JA, Li Y, et al.; American Heart Association Get With the Guidelines–Resuscitation Investigators: Survival trends in pediatric in-hospital cardiac arrests: An analysis from get with the guidelines-resuscitation. Circ Cardiovasc Qual Outcomes 2013; 6:42–49
Andersen LW, Holmberg MJ, Berg KM, et al.: In-hospital cardiac arrest: A review. JAMA 2019; 321:1200–1210
Bernard SA, Gray TW, Buist MD, et al.: Treatment of comatose survivors of out-of-hospital cardiac arrest with induced hypothermia. N Engl J Med 2002; 346:557–563
Hypothermia after Cardiac Arrest Study GMild therapeutic hypothermia to improve the neurologic outcome after cardiac arrest. N Engl J Med 2002; 346:549–556
Nielsen N, Wetterslev J, Cronberg T, et al.; TTM Trial Investigators: Targeted temperature management at 33°C versus 36°C after cardiac arrest. N Engl J Med 2013; 369:2197–2206
Sunde K, Pytte M, Jacobsen D, et al.: Implementation of a standardised treatment protocol for post resuscitation care after out-of-hospital cardiac arrest. Resuscitation 2007; 73:29–39
Topjian AA, Sutton RM, Reeder RW, et al.; Eunice Kennedy Shriver National Institute of Child Health and Human Development Collaborative Pediatric Critical Care Research Network (CPCCRN) Investigators: The association of immediate post cardiac arrest diastolic hypertension and survival following pediatric cardiac arrest. Resuscitation 2019; 141:88–95
Roberts BW, Kilgannon JH, Hunter BR, et al.: Association between elevated mean arterial blood pressure and neurologic outcome after resuscitation from cardiac arrest: Results from a multicenter prospective cohort study. Crit Care Med 2019; 47:93–100
Lascarrou JB, Merdji H, Le Gouge A, et al.; CRICS-TRIGGERSEP Group: Targeted temperature management for cardiac arrest with nonshockable rhythm. N Engl J Med 2019; 381:2327–2337
Topjian AA, French B, Sutton RM, et al.: Early postresuscitation hypotension is associated with increased mortality following pediatric cardiac arrest. Crit Care Med 2014; 42:1518–1523
Moler FW, Silverstein FS, Holubkov R, et al.; THAPCA Trial Investigators: Therapeutic hypothermia after out-of-hospital cardiac arrest in children. N Engl J Med 2015; 372:1898–1908
Niles D, Sutton RM, Donoghue A, et al.: “Rolling Refreshers”: A novel approach to maintain CPR psychomotor skill competence. Resuscitation 2009; 80:909–912
Wolfe H, Zebuhr C, Topjian AA, et al.: Interdisciplinary ICU cardiac arrest debriefing improves survival outcomes*. Crit Care Med 2014; 42:1688–1695
Elmer J, Rittenberger JC, Coppler PJ, et al.; Pittsburgh Post-Cardiac Arrest Service: Long-term survival benefit from treatment at a specialty center after cardiac arrest. Resuscitation 2016; 108:48–53
Vereczki V, Martin E, Rosenthal RE, et al.: Normoxic resuscitation after cardiac arrest protects against hippocampal oxidative stress, metabolic dysfunction, and neuronal death. J Cereb Blood Flow Metab 2006; 26:821–835
Richards EM, Rosenthal RE, Kristian T, et al.: Postischemic hyperoxia reduces hippocampal pyruvate dehydrogenase activity. Free Radic Biol Med 2006; 40:1960–1970
Ji J, Baart S, Vikulina AS, et al.: Deciphering of mitochondrial cardiolipin oxidative signaling in cerebral ischemia-reperfusion. J Cereb Blood Flow Metab 2015; 35:319–328
Ristagno G, Tang W, Huang L, et al.: Epinephrine reduces cerebral perfusion during cardiopulmonary resuscitation. Crit Care Med 2009; 37:1408–1415
Li L, Poloyac SM, Watkins SC, et al.: Cerebral microcirculatory alterations and the no-reflow phenomenon in vivo after experimental pediatric cardiac arrest. J Cereb Blood Flow Metab 2019; 39:913–925
Kloner RA, King KS, Harrington MG: No-reflow phenomenon in the heart and brain. Am J Physiol Heart Circ Physiol 2018; 315:H550–H562
Shaik JS, Poloyac SM, Kochanek PM, et al.: 20-Hydroxyeicosatetraenoic acid inhibition by HET0016 offers neuroprotection, decreases edema, and increases cortical cerebral blood flow in a pediatric asphyxial cardiac arrest model in rats. J Cereb Blood Flow Metab 2015; 35:1757–1763
Uray T, Empey PE, Drabek T, et al.: Nitrite pharmacokinetics, safety and efficacy after experimental ventricular fibrillation cardiac arrest. Nitric Oxide 2019; 93:71–77
Kim F, Dezfulian C, Empey PE, et al.: Usefulness of intravenous sodium nitrite during resuscitation for the treatment of out-of-hospital cardiac arrest. Am J Cardiol 2018; 122:554–559
Shankaran S, Laptook AR, Ehrenkranz RA, et al.; National Institute of Child Health and Human Development Neonatal Research Network: Whole-body hypothermia for neonates with hypoxic-ischemic encephalopathy. N Engl J Med 2005; 353:1574–1584
Jacobs SE, Berg M, Hunt R, et al.: Cooling for newborns with hypoxic ischaemic encephalopathy. Cochrane Database Syst Rev 2013; 1:CD003311
Kim SH, Park KN, Youn CS, et al.; Korean Hypothermia Network investigators: Outcome and status of postcardiac arrest care in Korea: Results from the Korean hypothermia network prospective registry. Clin Exp Emerg Med 2020; 7:250–258
Dankiewicz J, Cronberg T, TTM2 Trial Investigators. Hypothermia versus normothermia after out-of-hospital cardiac arrest. N Engl J Med 2021; 384:2283–2294
Kurz CM, Wainwright MS: Thermoregulate, autoregulate and ventilate: brain-directed critical care for pediatric cardiac arrest. Curr Opin Pediatr 2017; 29:259–265
Hickey RW, Kochanek PM, Ferimer H, et al.: Hypothermia and hyperthermia in children after resuscitation from cardiac arrest. Pediatrics 2000; 106:118–122
Lundbye JB, Rai M, Ramu B, et al.: Therapeutic hypothermia is associated with improved neurologic outcome and survival in cardiac arrest survivors of non-shockable rhythms. Resuscitation 2012; 83:202–207
Ye L, Wang X, Cai C, et al.: FGF21 promotes functional recovery after hypoxic-ischemic brain injury in neonatal rats by activating the PI3K/Akt signaling pathway via FGFR1/β-klotho. Exp Neurol 2019; 317:34–50
Jackson TC, Kochanek PM: A new vision for therapeutic hypothermia in the era of targeted temperature management: A speculative synthesis. Ther Hypothermia Temp Manag 2019; 9:13–47
Jackson TC, Manole MD, Kotermanski SE, et al.: Cold stress protein RBM3 responds to temperature change in an ultra-sensitive manner in young neurons. Neuroscience 2015; 305:268–278
Berger RP, Adelson PD, Richichi R, et al.: Serum biomarkers after traumatic and hypoxemic brain injuries: Insight into the biochemical response of the pediatric brain to inflicted brain injury. Dev Neurosci 2006; 28:327–335
Busto R, Dietrich WD, Globus MY, et al.: Small differences in intraischemic brain temperature critically determine the extent of ischemic neuronal injury. J Cereb Blood Flow Metab 1987; 7:729–738
Datta A, Sarmah D, Mounica L, et al.: Cell death pathways in ischemic stroke and targeted pharmacotherapy. Transl Stroke Res 2020; 11:1185–1202
Stockwell BR, Friedmann Angeli JP, Bayir H, et al.: Ferroptosis: A regulated cell death nexus linking metabolism, redox biology, and disease. Cell 2017; 171:273–285
Kannan S, Dai H, Navath RS, et al.: Dendrimer-based postnatal therapy for neuroinflammation and cerebral palsy in a rabbit model. Sci Transl Med 2012; 4:130ra46
Tang YH, Ma YY, Zhang ZJ, et al.: Opportunities and challenges: Stem cell-based therapy for the treatment of ischemic stroke. CNS Neurosci Ther 2015; 21:337–347
Youn CS, Park KN, Kim JY, et al.: Repeated diffusion weighted imaging in comatose cardiac arrest patients with therapeutic hypothermia. Resuscitation 2015; 96:1–8
Wallisch JS, Janesko-Feldman K, Alexander H, et al.: The aquaporin-4 inhibitor AER-271 blocks acute cerebral edema and improves early outcome in a pediatric model of asphyxial cardiac arrest. Pediatr Res 2019; 85:511–517
Huang K, Wang Z, Gu Y, et al.: Glibenclamide prevents water diffusion abnormality in the brain after cardiac arrest in rats. Neurocrit Care 2018; 29:128–135
Sarnaik AP, Preston G, Lieh-Lai M, et al.: Intracranial pressure and cerebral perfusion pressure in near-drowning. Crit Care Med 1985; 13:224–227
Nora GJ, Harun R, Fine DF, et al.: Ventricular fibrillation cardiac arrest produces a chronic striatal hyperdopaminergic state that is worsened by methylphenidate treatment. J Neurochem 2017; 142:305–322
Uray T, Lamade A, Elmer J, et al.; University of Pittsburgh Post-Cardiac Arrest Service: Phenotyping cardiac arrest: Bench and bedside characterization of brain and heart injury based on etiology. Crit Care Med 2018; 46:e508–e515
Behringer W, Safar P, Wu X, et al.: Survival without brain damage after clinical death of 60-120 mins in dogs using suspended animation by profound hypothermia. Crit Care Med 2003; 31:1523–1531
Wu X, Drabek T, Tisherman SA, et al.: Emergency preservation and resuscitation with profound hypothermia, oxygen, and glucose allows reliable neurological recovery after 3 h of cardiac arrest from rapid exsanguination in dogs. J Cereb Blood Flow Metab 2008; 28:302–311
Rhee PM, Acosta J, Bridgeman A, et al.: Survival after emergency department thoracotomy: Review of published data from the past 25 years. J Am Coll Surg 2000; 190:288–298
Seamon MJ, Haut ER, Van Arendonk K, et al.: An evidence-based approach to patient selection for emergency department thoracotomy: A practice management guideline from the Eastern association for the surgery of trauma. J Trauma Acute Care Surg 2015; 79:159–173
Manning JE, Rasmussen TE, Tisherman SA, et al.: Emerging hemorrhage control and resuscitation strategies in trauma: Endovascular to extracorporeal. J Trauma Acute Care Surg 2020; 89:S50–S58
Morrison JJ, Rasmussen TE: Noncompressible torso hemorrhage: A review with contemporary definitions and management strategies. Surg Clin North Am 2012; 92:843–58, vii
DuBose JJ, Scalea TM, Brenner M, et al.; AAST AORTA Study Group: The AAST prospective aortic occlusion for resuscitation in trauma and acute care surgery (AORTA) registry: Data on contemporary utilization and outcomes of aortic occlusion and resuscitative balloon occlusion of the aorta (REBOA). J Trauma Acute Care Surg 2016; 81:409–419
Bulger EM, Perina DG, Qasim Z, et al.: Clinical use of resuscitative endovascular balloon occlusion of the aorta (REBOA) in civilian trauma systems in the USA, 2019: A joint statement from the American College of Surgeons Committee on Trauma, the American College of Emergency Physicians, the National Association of Emergency Medical Services Physicians and the National Association of Emergency Medical Technicians. Trauma Surg Acute Care Open 2019; 4:e000376
Moore LJ, Brenner M, Kozar RA, et al.: Implementation of resuscitative endovascular balloon occlusion of the aorta as an alternative to resuscitative thoracotomy for noncompressible truncal hemorrhage. J Trauma Acute Care Surg 2015; 79:52330
Manning JE, Ross JD, McCurdy SL, et al.: Aortic hemostasis and resuscitation: Preliminary experiments using selective aortic arch perfusion with oxygenated blood and intra-aortic calcium coadministration in a model of hemorrhage-induced traumatic cardiac arrest. Acad Emerg Med 2016; 23:208–212
Barnard EBG, Manning JE, Smith JE, et al.: A comparison of selective aortic arch perfusion and resuscitative endovascular balloon occlusion of the aorta for the management of hemorrhage-induced traumatic cardiac arrest: A translational model in large swine. PLoS Med 2017; 14:e1002349
Hoops HE, Manning JE, Graham TL, et al.: Selective aortic arch perfusion with fresh whole blood or HBOC-201 reverses hemorrhage-induced traumatic cardiac arrest in a lethal model of noncompressible torso hemorrhage. J Trauma Acute Care Surg 2019; 87:263–273
Manning JE: Feasibility of blind aortic catheter placement in the prehospital environment to guide resuscitation in cardiac arrest. J Trauma Acute Care Surg 2013; 75:S173–S177
Swol J, Brodie D, Napolitano L, et al.; Extracorporeal Life Support Organization (ELSO): Indications and outcomes of extracorporeal life support in trauma patients. J Trauma Acute Care Surg 2018; 84:831–837
Bonacchi M, Spina R, Torracchi L, et al.: Extracorporeal life support in patients with severe trauma: An advanced treatment strategy for refractory clinical settings. J Thorac Cardiovasc Surg 2013; 145:1617–1626
Wu X, Drabek T, Kochanek PM, et al.: Induction of profound hypothermia for emergency preservation and resuscitation allows intact survival after cardiac arrest resulting from prolonged lethal hemorrhage and trauma in dogs. Circulation 2006; 113:1974–1982
Sailhamer EA, Chen Z, Ahuja N, et al.: Profound hypothermic cardiopulmonary bypass facilitates survival without a high complication rate in a swine model of complex vascular, splenic, and colon injuries. J Am Coll Surg 2007; 204:642–653
Kutcher ME, Forsythe RM, Tisherman SA: Emergency preservation and resuscitation for cardiac arrest from trauma. Int J Surg 2016; 33:209–212
Tisherman SA, Alam HB, Rhee PM, et al.: Development of the emergency preservation and resuscitation for cardiac arrest from trauma clinical trial. J Trauma Acute Care Surg 2017; 83:803–809
Martinez PA, Totapally BRThe epidemiology and outcomes of pediatric in-hospital cardiopulmonary arrest in the United States during 1997 to 2012. Resuscitation 2016; 105:177–181
Barbaro RP, Paden ML, Guner YS, et al.: Extracorporeal life support organization registry international report 2016. ASAIO J 2017; 63:456–463
del Nido PJ, Dalton HJ, Thompson AE, et al.: Extracorporeal membrane oxygenator rescue in children during cardiac arrest after cardiac surgery. Circulation 1992; 86:II300–II304
Bembea MM, Ng DK, Rizkalla N, et al.; American Heart Association’s Get With The Guidelines – Resuscitation Investigators: Outcomes after extracorporeal cardiopulmonary resuscitation of pediatric in-hospital cardiac arrest: A report from the get with the guidelines-resuscitation and the extracorporeal life support organization registries. Crit Care Med 2019; 47:e278–e285
Huang SC, Wu ET, Wang CC, et al.: Eleven years of experience with extracorporeal cardiopulmonary resuscitation for paediatric patients with in-hospital cardiac arrest. Resuscitation 2012; 83:710–714
Kane DA, Thiagarajan RR, Wypij D, et al.: Rapid-response extracorporeal membrane oxygenation to support cardiopulmonary resuscitation in children with cardiac disease. Circulation 2010; 122:S241–S248
Thiagarajan RR, Laussen PC, Rycus PT, et al.: Extracorporeal membrane oxygenation to aid cardiopulmonary resuscitation in infants and children. Circulation 2007; 116:1693–1700
Philip J, Burgman C, Bavare A, et al.: Nature of the underlying heart disease affects survival in pediatric patients undergoing extracorporeal cardiopulmonary resuscitation. J Thorac Cardiovasc Surg 2014; 148:2367–2372
Meert KL, Guerguerian AM, Barbaro R, et al.; Therapeutic Hypothermia After Pediatric Cardiac Arrest (THAPCA) Trial Investigators: Extracorporeal cardiopulmonary resuscitation: One-year survival and neurobehavioral outcome among infants and children with in-hospital cardiac arrest. Crit Care Med 2019; 47:393–402
Chan T, Thiagarajan RR, Frank D, et al.: Survival after extracorporeal cardiopulmonary resuscitation in infants and children with heart disease. J Thorac Cardiovasc Surg 2008; 136:984–992
Sivarajan VB, Best D, Brizard CP, et al.: Duration of resuscitation prior to rescue extracorporeal membrane oxygenation impacts outcome in children with heart disease. Intensive Care Med 2011; 37:853–860
Sanchez-Glanville C, Brindle ME, Spence T, et al.: Evaluating the introduction of extracorporeal life support technology to a tertiary-care pediatric institution: Smoothing the learning curve through interprofessional simulation training. J Pediatr Surg 2015; 50:798–804
Marino BS, Tabbutt S, MacLaren G, et al.; American Heart Association Congenital Cardiac Defects Committee of the Council on Cardiovascular Disease in the Young; Council on Clinical Cardiology; Council on Cardiovascular and Stroke Nursing; Council on Cardiovascular Surgery and Anesthesia; and Emergency Cardiovascular Care Committee: Cardiopulmonary resuscitation in infants and children with cardiac disease: A scientific statement from the American Heart Association. Circulation 2018; 137:e691–e782
Allan CK, Thiagarajan RR, Beke D, et al.: Simulation-based training delivered directly to the pediatric cardiac intensive care unit engenders preparedness, comfort, and decreased anxiety among multidisciplinary resuscitation teams. J Thorac Cardiovasc Surg 2010; 140:646–652
Cashen K, Reeder R, Dalton HJ, et al.; Eunice Kennedy Shriver National Institute of Child Health and Human Development Collaborative Pediatric Critical Care Research Network (CPCCRN): Functional status of neonatal and pediatric patients after extracorporeal membrane oxygenation. Pediatr Crit Care Med 2017; 18:561–570
Barrett CS, Bratton SL, Salvin JW, et al.: Neurological injury after extracorporeal membrane oxygenation use to aid pediatric cardiopulmonary resuscitation. Pediatr Crit Care Med 2009; 10:445–451
Slomine BS, Silverstein FS, Christensen JR, et al.; Therapeutic Hypothermia after Paediatric Cardiac Arrest (THAPCA) Trial Investigators: Neurobehavioural outcomes in children after in-hospital cardiac arrest. Resuscitation 2018; 124:80–89
Brogan TV, Lequier L, Lorusso R, et alExtracorporeal Life Support: The ELSO Red Book. 2017Fifth EditionAnn Arbor, MI, The Extracorporeal Life Support Organization,

Auteurs

Heidi J Dalton (HJ)

Heart and Vascular Institute and Department of Pediatrics, INOVA Fairfax Medical Center, Falls Church, VA.

Robert A Berg (RA)

Department of Critical Care, Children's Hospital of Philadelphia, Philadelphia, PA.

Vinay M Nadkarni (VM)

Department of Critical Care, Children's Hospital of Philadelphia, Philadelphia, PA.

Patrick M Kochanek (PM)

Department of Anesthesiology/Critical Care Medicine, Peter Safer Resuscitation Center, Pittsburgh, PA.

Samuel A Tisherman (SA)

Department of Surgery, R Adams Cowley Shock Trauma Center, Baltimore, MD.

Ravi Thiagarajan (R)

Department of Cardiology, Division of Cardiovascular Critical Care, Boston Children's Hospital, Boston, MA.

Peta Alexander (P)

Department of Cardiology, Division of Cardiovascular Critical Care, Boston Children's Hospital, Boston, MA.

Robert H Bartlett (RH)

Department of Surgery, University of Michigan, Ann Arbor, MI.

Articles similaires

[Redispensing of expensive oral anticancer medicines: a practical application].

Lisanne N van Merendonk, Kübra Akgöl, Bastiaan Nuijen
1.00
Humans Antineoplastic Agents Administration, Oral Drug Costs Counterfeit Drugs

Smoking Cessation and Incident Cardiovascular Disease.

Jun Hwan Cho, Seung Yong Shin, Hoseob Kim et al.
1.00
Humans Male Smoking Cessation Cardiovascular Diseases Female
Humans United States Aged Cross-Sectional Studies Medicare Part C
1.00
Humans Yoga Low Back Pain Female Male

Classifications MeSH