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Section 4 - Advanced Organ Support

Published online by Cambridge University Press:  15 June 2018

Kamen Valchanov
Affiliation:
Papworth Hospital
Nicola Jones
Affiliation:
Papworth Hospital
Charles W. Hogue
Affiliation:
Northwestern University in Chicago
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Publisher: Cambridge University Press
Print publication year: 2018

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References

Further Reading

Bignami, E, Tritapepe, L, Pasin, L, et al. A survey on the use of intra-aortic balloon pump in cardiac surgery. Annals of Cardiac Anaesthesia. 2012; 15: 274277.Google ScholarPubMed
Cheng, JM, den Uil, CA, Hoeks, SE, et al. Percutaneous left ventricular assist devices vs. intra-aortic balloon pump counterpulsation for treatment of cardiogenic shock: a meta-analysis of controlled trials. European Heart Journal. 2009; 30: 21022108.CrossRefGoogle ScholarPubMed
Ferguson, JJ, Cohen, M, Freedman, RJ, et al. The current practice of intra-aortic balloon counterpulsation: results from the Benchmark Registry. Journal of the American College of Cardiology. 2001; 38: 14561462.CrossRefGoogle ScholarPubMed
Kogan, A, Preisman, S, Sternik, L, et al. Heparin-free management of intra-aortic balloon pump after cardiac surgery. Journal of Cardiac Surgery. 2012; 27: 434437.CrossRefGoogle ScholarPubMed
Naido, SS. Contemporary reviews in cardiovascular medicine, novel percutaneous cardiac assist devices: the science of and indications for hemodynamic support. Circulation. 2011; 123: 533543.CrossRefGoogle Scholar
Ouweneel, DM, Henriques, JPS. Percutaneous cardiac support devices for cardiogenic shock: current indications and recommendations. Heart. 2012; 98: 12461254.CrossRefGoogle ScholarPubMed
Pucher, PH, Cummings, IG, Shipolini, AR, McCormack, DJ. Is heparin needed for patients with an intra-aortic balloon pump? Interactive Cardiovascular and Thoracic Surgery. 2012; 15: 136139.CrossRefGoogle ScholarPubMed
Rihal, CS, Naidu, SS, Givertz, MM, et al. SCAI/ACC/HFSA/STS Clinical Expert Consensus Statement on the use of percutaneous mechanical circulatory support devices in cardiovascular care. Journal of the American College of Cardiology. 2015; 65: e726.CrossRefGoogle ScholarPubMed
Scheidt, S, Wilner, G, Mueller, H, et al. Intra-aortic balloon counterpulsation in cardiogenic shock. Report of a co-operative clinical trial. New England Journal of Medicine. 1973; 288: 979984.CrossRefGoogle ScholarPubMed
Thiele, H, Sick, P, Boudriot, E, et al. Randomized comparison of intra-aortic balloon support with a percutaneous left ventricular assist device in patients with revascularized acute myocardial infarction complicated by cardiogenic shock. European Heart Journal. 2005; 26: 12761283.CrossRefGoogle ScholarPubMed
Thiele, H, Zeymer, U, Neumann, F-J, et al. Intra-aortic balloon counterpulsation in acute myocardial infarction complicated by cardiogenic shock (IABP-SHOCK II): final 12 month results of a randomised, open-label trial. Lancet. 2013; 382: 16381645.CrossRefGoogle ScholarPubMed
Unverzagt, S, Buerke, M, de Waha, A, et al. Intra-aortic balloon pump counterpulsation (IABP) for myocardial infarction complicated by cardiogenic shock. Cochrane Database of Systematic Reviews. 2015; 3: CD007398.Google Scholar
Windecker, S, Kolh, P, Alfonso, F, et al. 2014 ESC/EACTS guidelines on myocardial revascularization. Revista Española de Cardiología (English Edition). 2015; 68: 144.Google Scholar

Further Reading

Cheng, JM, Den Uil, CA, Hoeks, SE, et al. Percutaneous left ventricular assist devices vs intra-aortic balloon pump counterpulsation for treatment of cardiogenic shock: a meta analysis of controlled trials. European Heart Journal. 2009; 30: 21022108.CrossRefGoogle ScholarPubMed
Gilotra, NA, Stevens, GR. Temporary mechanical circulatory support: a review of the options, indications, and outcomes. Clinical Medical Insights: Cardiology. 2014; 8(Suppl 1): 7585.Google ScholarPubMed
Kirklin, JK, Naftel, DC, Kormos, RL, et al. Fifth INTERMACS annual report: risk factor analysis from more than 6,000 mechanical circulatory support patients. Journal of Heart and Lung Transplantation. 2013; 32: 141156.CrossRefGoogle Scholar
Mancini, D, Colombo, PC. Left ventricular assist devices. a rapidly evolving alternative to transplant. Journal of the American College of Cardiology. 2015; 65: 25422555.CrossRefGoogle ScholarPubMed
Park, SJ, Milano, CA, Tatooles, AJ, et al. HeartMate II Clinical Investigators. Outcomes in advanced heart failure patients with left ventricular assist devices for destination therapy. Circulation: Heart Failure. 2012; 5: 241248.Google ScholarPubMed
Patlolla, B, Beygui, R, Haddad, F. Right-ventricular failure following left ventricle assist device implantation. Current Opinion in Cardiology. 2013; 28: 223233.CrossRefGoogle ScholarPubMed
Rose, EA, Gelijns, AC, Moskowitz, AJ, et al. Randomized Evaluation of Mechanical Assistance for the Treatment of Congestive Heart Failure (REMATCH) Study Group. Long-term mechanical left ventricular assistance for end-stage heart failure. New England Journal of Medicine. 2001; 345: 14351443.CrossRefGoogle Scholar
Slaughter, MS, Pagani, FD, McGee, EC, et al. HeartWare ventricular assist system for bridge to transplant: combined results of the bridge to transplant and continued access protocol trial. Journal of Heart and Lung Transplantation. 2013; 32: 675683.CrossRefGoogle Scholar
Stevenson, LW, Pagani, FD, Young, JB, et al. INTERMACS profiles of advanced heart failure: the current picture. Journal of Heart and Lung Transplantation. 2009; 28: 535540.CrossRefGoogle ScholarPubMed
Uriel, N, Han, J, Morrison, KA, et al. Device thrombosis in HeartMate II continuous-flow left ventricular assist devices: a multifactorial phenomenon. Journal of Heart and Lung Transplantation. 2014; 33: 51.CrossRefGoogle ScholarPubMed

Further Reading

Abrams, D, Combes, A, Brodie, D. What’s new in extracorporeal membrane oxygenation for cardiac failure and cardiac arrest in adults? Intensive Care Medicine. 2014; 40: 609612.CrossRefGoogle ScholarPubMed
Beckmann, A, Benk, C, Beyersdorf, F, et al. Position article for the use of extracorporeal life support in adult patients. European Journal of Cardio-Thoracic Surgery. 2011; 40: 676680.Google ScholarPubMed
Bembea, MM, Annich, G, Rycus, P, et al. Variability in anticoagulation management of patients on extracorporeal membrane oxygenation: an international survey. Pediatric Critical Care Medicine. 2013; 14: e7784.CrossRefGoogle ScholarPubMed
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: 554561.CrossRefGoogle ScholarPubMed
Cheng, R, Hachamovitch, R, Kittleson, M, et al. Complications of extracorporeal membrane oxygenation for treatment of cardiogenic shock and cardiac arrest: a meta-analysis of 1,866 adult patients. Annals of Thoracic Surgery. 2014; 97: 610616.CrossRefGoogle Scholar
Extracorporeal Life Support Organisation. General Guidelines for all Extracorporeal Life Support, version 1.3. Ann Arbor MI, 2013.Google Scholar
Gaffney, AM, Wildhirt, SM, Griffin, MJ, Annich, GM, Radomski, MW. Extracorporeal life support. British Medical Journal. 2010; 341: c5317.CrossRefGoogle ScholarPubMed
Lawler, PR, Silver, DA, Scirica, BM, Couper, GS, Weinhouse, GL, Camp, PC. Extracorporeal membrane oxygenation in adults with cardiogenic shock. Circulation. 2015; 131: 676680.CrossRefGoogle ScholarPubMed
Napp, CL, Kühn, C, Hoeper, MM, Vogel-Claussen, J, Haverich, A, Schäfer, A, et al. Cannulation strategies for percutaneous extracorporeal membrane oxygenation in adults. Clinical Research in Cardiology. 2016; 105: 283296.CrossRefGoogle ScholarPubMed
Tramm, R, Ilic, D, Davies, AR, Pellegrino, VA, Romero, L, Hodgson, C. Extracorporeal membrane oxygenation for critically ill adults. Cochrane Database of Systematic Reviews. 2015; 1: CD010381.Google ScholarPubMed
Werdan, K, Gielen, S, Ebelt, H, Hochman, JS. Mechanical circulatory support in cardiogenic shock. European Heart Journal. 2014; 35: 156167.CrossRefGoogle ScholarPubMed

Further Reading

Abrams, D, Bacchetta, M, Brodie, D. Recirculation in venovenous extracorporeal membrane oxygenation. ASAIO Journal. 2015; 61: 115121.CrossRefGoogle ScholarPubMed
Abrams, DC, Brenner, K, Burkart, KM, et al. Pilot study of extracorporeal carbon dioxide removal to facilitate extubation and ambulation in exacerbations of chronic obstructive pulmonary disease. Annals of the American Thoracic Society. 2013; 10: 307314.CrossRefGoogle ScholarPubMed
Abrams, D, Brodie, D. Emerging indications for extracorporeal membrane oxygenation in adults with respiratory failure. Annals of the American Thoracic Society. 2013; 10: 371377.CrossRefGoogle ScholarPubMed
Abrams, DC, Brodie, D, Rosenzweig, EB, et al. Upper-body extracorporeal membrane oxygenation as a strategy in decompensated pulmonary arterial hypertension. Pulmonary Circulation. 2013; 3: 432435.CrossRefGoogle ScholarPubMed
Abrams, D, Javidfar, J, Farrand, E, et al. Early mobilization of patients receiving extracorporeal membrane oxygenation: a retrospective cohort study. Critical Care. 2014; 18: R38.CrossRefGoogle ScholarPubMed
Berman, M, Tsui, S, Vuylsteke, A, et al. Successful extracorporeal membrane oxygenation support after pulmonary thromboendarterectomy. Annals of Thoracic Surgery. 2008; 86: 12611267.CrossRefGoogle ScholarPubMed
Brodie, D, Bacchetta, M. Extracorporeal membrane oxygenation for ARDS in adults. New England Journal of Medicine. 2011; 365: 19051914.CrossRefGoogle ScholarPubMed
Chiumello, D, Coppola, S, Froio, S, Colombo, A, Del Sorbo, L. Extracorporeal life support as bridge to lung transplantation: a systematic review. Critical Care. 2015; 19: 19.CrossRefGoogle ScholarPubMed
Combes, A, Bacchetta, M, Brodie, D, Muller, T, Pellegrino, V. Extracorporeal membrane oxygenation for respiratory failure in adults. Current Opinion in Critical Care. 2012; 18: 99104.CrossRefGoogle ScholarPubMed
MacLaren, G, Combes, A, Bartlett, RH. Contemporary extracorporeal membrane oxygenation for adult respiratory failure: life support in the new era. Intensive Care Medicine. 2012; 38: 210220.CrossRefGoogle ScholarPubMed
Mikkelsen, ME, Woo, YJ, Sager, JS, Fuchs, BD, Christie, JD. Outcomes using extracorporeal life support for adult respiratory failure due to status asthmaticus. ASAIO Journal. 2009; 55: 4752.CrossRefGoogle ScholarPubMed
Noah, MA, Peek, GJ, Finney, SJ, et al. Referral to an extracorporeal membrane oxygenation center and mortality among patients with severe 2009 influenza A(H1N1). Journal of the American Medical Association. 2011; 306: 16591668.CrossRefGoogle Scholar
Paden, ML, Conrad, SA, Rycus, PT, Thiagarajan, RR; ELSO Registry. Extracorporeal Life Support Organization Registry Report 2012. ASAIO Journal. 2013; 59: 202210.CrossRefGoogle ScholarPubMed
Peek, GJ, Mugford, M, Tiruvoipati, R, et al. Efficacy and economic assessment of conventional ventilatory support versus extracorporeal membrane oxygenation for severe adult respiratory failure (CESAR): a multicentre randomised controlled trial. Lancet. 2009; 374: 13511363.CrossRefGoogle Scholar
The Acute Respiratory Distress Syndrome Network. Ventilation with lower tidal volumes as compared with traditional tidal volumes for acute lung injury and the acute respiratory distress syndrome. New England Journal of Medicine. 2000; 342: 13011308.CrossRefGoogle Scholar
Zapol, WM, Snider, MT, Hill, JD, et al. Extracorporeal membrane oxygenation in severe acute respiratory failure. A randomized prospective study. Journal of the American Medical Association. 1979; 242: 21932196.CrossRefGoogle ScholarPubMed

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