Literature DB >> 20627520

Mild hypothermia reduces acute mortality and improves hemodynamic outcome in a cardiogenic shock pig model.

Matthias Götberg1, Jesper van der Pals, Göran K Olivecrona, Michael Götberg, Sasha Koul, David Erlinge.   

Abstract

INTRODUCTION: Cardiogenic shock is the main cause of death in patients hospitalized due to an acute myocardial infarction. Mild hypothermia reduces metabolism and could offer protective effects for this condition. The aim of our study was to investigate if mild therapeutic hypothermia would improve outcome and hemodynamic parameters in an ischemic cardiogenic shock pig model.
METHODS: Twenty-five pigs (40-50 kg) were anesthetized and a normothermic temperature of 38 degrees C was established utilising an endovascular cooling catheter in a closed-chest model. A Swan-Ganz catheter was placed in the pulmonary artery. Hemodynamic parameters were continuously monitored and blood gases were sampled every 30 min. Ischemia was induced by inflation of a PCI balloon in proximal LAD for 40 min. Sixteen pigs that have fulfilled predefined shock criteria were randomized to hypothermia (n=8), or normothermia (n=8). Hypothermia (33 degrees C) was induced after onset of reperfusion by using an endovascular temperature modulating catheter and was maintained until termination of the experiment.
RESULTS: The pigs in the hypothermia group were cooled to <34 degrees C in approximately 45 min. 5/8 pigs in the normothermia group died while all pigs in the hypothermia group survived (p<0.01). Stroke volume and blood pressure were significantly higher in the hypothermia group (p<0.05), whereas heart rate was significantly lower in the hypothermia group (p=0.01). Cardiac output did not differ among the groups (p=0.13). Blood gas analysis revealed higher mixed venous oxygen saturation, pH, and base excess in the hypothermia group indicating less development of metabolic acidosis (p<0.05).
CONCLUSIONS: In this pig model, mild therapeutic hypothermia reduces acute mortality in cardiogenic shock, improves hemodynamic parameters and reduces metabolic acidosis. These findings suggest a possible clinical benefit of therapeutic hypothermia for patients with acute cardiogenic shock. Copyright 2010 Elsevier Ireland Ltd. All rights reserved.

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Year:  2010        PMID: 20627520     DOI: 10.1016/j.resuscitation.2010.04.033

Source DB:  PubMed          Journal:  Resuscitation        ISSN: 0300-9572            Impact factor:   5.262


  18 in total

1.  Hypothermic liquid ventilation prevents early hemodynamic dysfunction and cardiovascular mortality after coronary artery occlusion complicated by cardiac arrest in rabbits.

Authors:  Lys Darbera; Mourad Chenoune; Fanny Lidouren; Matthias Kohlhauer; Clovis Adam; Patrick Bruneval; Bijan Ghaleh; Jean-Luc Dubois-Randé; Pierre Carli; Benoit Vivien; Jean-Damien Ricard; Alain Berdeaux; Renaud Tissier
Journal:  Crit Care Med       Date:  2013-12       Impact factor: 7.598

Review 2.  Non-pharmaceutical therapies for stroke: mechanisms and clinical implications.

Authors:  Fan Chen; Zhifeng Qi; Yuming Luo; Taylor Hinchliffe; Guanghong Ding; Ying Xia; Xunming Ji
Journal:  Prog Neurobiol       Date:  2014-01-07       Impact factor: 11.685

3.  The association of targeted temperature management at 33 and 36 °C with outcome in patients with moderate shock on admission after out-of-hospital cardiac arrest: a post hoc analysis of the Target Temperature Management trial.

Authors:  Martin Annborn; John Bro-Jeppesen; Niklas Nielsen; Susann Ullén; Jesper Kjaergaard; Christian Hassager; Michael Wanscher; Jan Hovdenes; Tommaso Pellis; Paolo Pelosi; Matt P Wise; Tobias Cronberg; David Erlinge; Hans Friberg
Journal:  Intensive Care Med       Date:  2014-07-08       Impact factor: 17.440

Review 4.  Consensus guidelines for the use and interpretation of angiogenesis assays.

Authors:  Patrycja Nowak-Sliwinska; Kari Alitalo; Elizabeth Allen; Andrey Anisimov; Alfred C Aplin; Robert Auerbach; Hellmut G Augustin; David O Bates; Judy R van Beijnum; R Hugh F Bender; Gabriele Bergers; Andreas Bikfalvi; Joyce Bischoff; Barbara C Böck; Peter C Brooks; Federico Bussolino; Bertan Cakir; Peter Carmeliet; Daniel Castranova; Anca M Cimpean; Ondine Cleaver; George Coukos; George E Davis; Michele De Palma; Anna Dimberg; Ruud P M Dings; Valentin Djonov; Andrew C Dudley; Neil P Dufton; Sarah-Maria Fendt; Napoleone Ferrara; Marcus Fruttiger; Dai Fukumura; Bart Ghesquière; Yan Gong; Robert J Griffin; Adrian L Harris; Christopher C W Hughes; Nan W Hultgren; M Luisa Iruela-Arispe; Melita Irving; Rakesh K Jain; Raghu Kalluri; Joanna Kalucka; Robert S Kerbel; Jan Kitajewski; Ingeborg Klaassen; Hynda K Kleinmann; Pieter Koolwijk; Elisabeth Kuczynski; Brenda R Kwak; Koen Marien; Juan M Melero-Martin; Lance L Munn; Roberto F Nicosia; Agnes Noel; Jussi Nurro; Anna-Karin Olsson; Tatiana V Petrova; Kristian Pietras; Roberto Pili; Jeffrey W Pollard; Mark J Post; Paul H A Quax; Gabriel A Rabinovich; Marius Raica; Anna M Randi; Domenico Ribatti; Curzio Ruegg; Reinier O Schlingemann; Stefan Schulte-Merker; Lois E H Smith; Jonathan W Song; Steven A Stacker; Jimmy Stalin; Amber N Stratman; Maureen Van de Velde; Victor W M van Hinsbergh; Peter B Vermeulen; Johannes Waltenberger; Brant M Weinstein; Hong Xin; Bahar Yetkin-Arik; Seppo Yla-Herttuala; Mervin C Yoder; Arjan W Griffioen
Journal:  Angiogenesis       Date:  2018-08       Impact factor: 9.596

5.  Hypothermia in cardiogenic shock reduces systemic t-PA release.

Authors:  Jesper van der Pals; Michael I Götberg; Matthias Götberg; Lillemor Mattsson Hultén; Mia Magnusson; Sverker Jern; David Erlinge
Journal:  J Thromb Thrombolysis       Date:  2011-07       Impact factor: 2.300

6.  Hemodynamics and vasopressor support during targeted temperature management after cardiac arrest with non-shockable rhythm: A post hoc analysis of a randomized controlled trial.

Authors:  Matthieu Petit; Jean-Baptiste Lascarrou; Gwenhael Colin; Hamid Merdji; Alain Cariou; Guillaume Geri
Journal:  Resusc Plus       Date:  2022-07-12

Review 7.  [Venous saturation : Between oxygen delivery and consumption].

Authors:  V Mezger; F Balzer; M Habicher; M Sander
Journal:  Med Klin Intensivmed Notfmed       Date:  2016-03-01       Impact factor: 0.840

8.  Myocardial dysfunction after out-of-hospital cardiac arrest: predictors and prognostic implications.

Authors:  Yuan Yao; Nicholas James Johnson; Sarah Muirhead Perman; Vimal Ramjee; Anne Victoria Grossestreuer; David Foster Gaieski
Journal:  Intern Emerg Med       Date:  2017-10-05       Impact factor: 3.397

9.  Surface cooling for induction of mild hypothermia in conscious healthy volunteers - a feasibility trial.

Authors:  Christoph Testori; Fritz Sterz; Wilhelm Behringer; Alexander Spiel; Christa Firbas; Bernd Jilma
Journal:  Crit Care       Date:  2011-10-22       Impact factor: 9.097

10.  Left ventricular diastolic dysfunction during acute myocardial infarction: effect of mild hypothermia.

Authors:  Michael Schwarzl; Stefan Huber; Heinrich Maechler; Paul Steendijk; Sebastian Seiler; Martie Truschnig-Wilders; Thomas Nestelberger; Burkert M Pieske; Heiner Post
Journal:  Resuscitation       Date:  2012-05-24       Impact factor: 6.251

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