Literature DB >> 27923692

A hemodynamic-directed approach to pediatric cardiopulmonary resuscitation (HD-CPR) improves survival.

Ryan W Morgan1, Todd J Kilbaugh2, Wesley Shoap2, George Bratinov2, Yuxi Lin2, Ting-Chang Hsieh2, Vinay M Nadkarni2, Robert A Berg2, Robert M Sutton2.   

Abstract

AIM: Most pediatric in-hospital cardiac arrests (IHCAs) occur in ICUs where invasive hemodynamic monitoring is frequently available. Titrating cardiopulmonary resuscitation (CPR) to the hemodynamic response of the individual improves survival in preclinical models of adult cardiac arrest. The objective of this study was to determine if titrating CPR to systolic blood pressure (SBP) and coronary perfusion pressure (CoPP) in a pediatric porcine model of asphyxia-associated ventricular fibrillation (VF) IHCA would improve survival as compared to traditional CPR.
METHODS: After 7min of asphyxia followed by VF, 4-week-old piglets received either hemodynamic-directed CPR (HD-CPR; compression depth titrated to SBP of 90mmHg and vasopressor administration to maintain CoPP ≥20mmHg); or Standard Care (compression depth 1/3 of the anterior-posterior chest diameter and epinephrine every 4min). All animals received CPR for 10min prior to the first defibrillation attempt. CPR was continued for a maximum of 20min. Protocolized intensive care was provided to all surviving animals for 4h. The primary outcome was 4-h survival.
RESULTS: Survival rate was greater with HD-CPR (12/12) than Standard Care (6/10; p=0.03). CoPP during HD-CPR was higher compared to Standard Care (point estimate +8.1mmHg, CI95: 0.5-15.8mmHg; p=0.04). Chest compression depth was lower with HD-CPR than Standard Care (point estimate -14.0mm, CI95: -9.6 to -18.4mm; p<0.01). Prior to the first defibrillation attempt, more vasopressor doses were administered with HD-CPR vs. Standard Care (median 5 vs. 2; p<0.01).
CONCLUSIONS: Hemodynamic-directed CPR improves short-term survival compared to standard depth-targeted CPR in a porcine model of pediatric asphyxia-associated VF IHCA.
Copyright © 2016 Elsevier Ireland Ltd. All rights reserved.

Entities:  

Keywords:  Blood pressure; Cardiopulmonary resuscitation; Coronary perfusion pressure; Pediatric cardiac arrest

Mesh:

Year:  2016        PMID: 27923692      PMCID: PMC5218511          DOI: 10.1016/j.resuscitation.2016.11.018

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


  50 in total

1.  Compression depth estimation for CPR quality assessment using DSP on accelerometer signals.

Authors:  Sven O Aase; Helge Myklebust
Journal:  IEEE Trans Biomed Eng       Date:  2002-03       Impact factor: 4.538

Review 2.  Part 11: Pediatric Basic Life Support and Cardiopulmonary Resuscitation Quality: 2015 American Heart Association Guidelines Update for Cardiopulmonary Resuscitation and Emergency Cardiovascular Care.

Authors:  Dianne L Atkins; Stuart Berger; Jonathan P Duff; John C Gonzales; Elizabeth A Hunt; Benny L Joyner; Peter A Meaney; Dana E Niles; Ricardo A Samson; Stephen M Schexnayder
Journal:  Circulation       Date:  2015-11-03       Impact factor: 29.690

3.  First documented rhythm and clinical outcome from in-hospital cardiac arrest among children and adults.

Authors:  Vinay M Nadkarni; Gregory Luke Larkin; Mary Ann Peberdy; Scott M Carey; William Kaye; Mary E Mancini; Graham Nichol; Tanya Lane-Truitt; Jerry Potts; Joseph P Ornato; Robert A Berg
Journal:  JAMA       Date:  2006-01-04       Impact factor: 56.272

4.  Adrenaline, terlipressin, and corticoids versus adrenaline in the treatment of experimental pediatric asphyxial cardiac arrest.

Authors:  Rafael González; Javier Urbano; Marta Botrán; Jorge López; Maria J Solana; Ana García; Sarah Fernández; Jesús López-Herce
Journal:  Pediatr Crit Care Med       Date:  2014-07       Impact factor: 3.624

5.  Hemodynamic directed CPR improves short-term survival from asphyxia-associated cardiac arrest.

Authors:  Robert M Sutton; Stuart H Friess; Utpal Bhalala; Matthew R Maltese; Maryam Y Naim; George Bratinov; Dana Niles; Vinay M Nadkarni; Lance B Becker; Robert A Berg
Journal:  Resuscitation       Date:  2012-11-07       Impact factor: 5.262

6.  The effects of epinephrine/norepinephrine on end-tidal carbon dioxide concentration, coronary perfusion pressure and pulmonary arterial blood flow during cardiopulmonary resuscitation.

Authors:  L Lindberg; Q Liao; S Steen
Journal:  Resuscitation       Date:  2000-01       Impact factor: 5.262

7.  Mechanisms by which epinephrine augments cerebral and myocardial perfusion during cardiopulmonary resuscitation in dogs.

Authors:  J R Michael; A D Guerci; R C Koehler; A Y Shi; J Tsitlik; N Chandra; E Niedermeyer; M C Rogers; R J Traystman; M L Weisfeldt
Journal:  Circulation       Date:  1984-04       Impact factor: 29.690

8.  In-hospital versus out-of-hospital pediatric cardiac arrest: a multicenter cohort study.

Authors:  Frank W Moler; Kathleen Meert; Amy E Donaldson; Vinay Nadkarni; Richard J Brilli; Heidi J Dalton; Robert S B Clark; Donald H Shaffner; Charles L Schleien; Kimberly Statler; Kelly S Tieves; Richard Hackbarth; Robert Pretzlaff; Elise W van der Jagt; Fiona Levy; Lynn Hernan; Faye S Silverstein; J Michael Dean
Journal:  Crit Care Med       Date:  2009-07       Impact factor: 7.598

9.  Multicenter cohort study of in-hospital pediatric cardiac arrest.

Authors:  Kathleen L Meert; Amy Donaldson; Vinay Nadkarni; Kelly S Tieves; Charles L Schleien; Richard J Brilli; Robert S B Clark; Donald H Shaffner; Fiona Levy; Kimberly Statler; Heidi J Dalton; Elise W van der Jagt; Richard Hackbarth; Robert Pretzlaff; Lynn Hernan; J Michael Dean; Frank W Moler
Journal:  Pediatr Crit Care Med       Date:  2009-09       Impact factor: 3.624

10.  Factors associated with mortality in pediatric in-hospital cardiac arrest: a prospective multicenter multinational observational study.

Authors:  Jesús López-Herce; Jimena Del Castillo; Martha Matamoros; Sonia Cañadas; Ana Rodriguez-Calvo; Corrado Cecchetti; Antonio Rodriguez-Núñez; Angel Carrillo Alvarez
Journal:  Intensive Care Med       Date:  2012-11-27       Impact factor: 17.440

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  25 in total

1.  Association of diastolic blood pressure with survival during paediatric cardiopulmonary resuscitation.

Authors:  Caitlin E O'Brien; Polan T Santos; Michael Reyes; Shawn Adams; C Danielle Hopkins; Ewa Kulikowicz; Jennifer L Hamrick; Justin T Hamrick; Jennifer K Lee; Sapna R Kudchadkar; Elizabeth A Hunt; Raymond C Koehler; Donald H Shaffner
Journal:  Resuscitation       Date:  2019-08-04       Impact factor: 5.262

2.  Pulse oximetry plethysmography: A new approach for physiology-directed CPR?

Authors:  Lindsay N Shepard; Robert A Berg; Ryan W Morgan
Journal:  Resuscitation       Date:  2021-10-29       Impact factor: 5.262

3.  Effects of epinephrine on hemodynamic changes during cardiopulmonary resuscitation in a neonatal piglet model.

Authors:  Michael Wagner; Po-Yin Cheung; Elliott S Li; Tze-Fun Lee; Min Lu; Megan O'Reilly; Monika Olischar; Georg M Schmölzer
Journal:  Pediatr Res       Date:  2018-01-10       Impact factor: 3.756

4.  Cerebral microcirculatory alterations and the no-reflow phenomenon in vivo after experimental pediatric cardiac arrest.

Authors:  Lingjue Li; Samuel M Poloyac; Simon C Watkins; Claudette M St Croix; Henry Alexander; Gregory A Gibson; Patricia A Loughran; Levent Kirisci; Robert Sb Clark; Patrick M Kochanek; Alberto L Vazquez; Mioara D Manole
Journal:  J Cereb Blood Flow Metab       Date:  2017-12-01       Impact factor: 6.200

5.  A randomized and blinded trial of inhaled nitric oxide in a piglet model of pediatric cardiopulmonary resuscitation.

Authors:  Ryan W Morgan; Robert M Sutton; Adam S Himebauch; Anna L Roberts; William P Landis; Yuxi Lin; Jonathan Starr; Abhay Ranganathan; Nile Delso; Constantine D Mavroudis; Lindsay Volk; Julia Slovis; Alexandra M Marquez; Vinay M Nadkarni; Marco Hefti; Robert A Berg; Todd J Kilbaugh
Journal:  Resuscitation       Date:  2021-03-22       Impact factor: 5.262

6.  Assessment of a new volumetric capnography-derived parameter to reflect compression quality and to predict return of spontaneous circulation during cardiopulmonary resuscitation in a porcine model.

Authors:  Lili Zhang; Kui Jin; Feng Sun; Jun Xu; Xuezhong Yu; Huadong Zhu; Yangyang Fu; Danyu Liu; Shanshan Yu
Journal:  J Clin Monit Comput       Date:  2021-01-28       Impact factor: 2.502

Review 7.  Pediatric In-Hospital Cardiac Arrest and Cardiopulmonary Resuscitation in the United States: A Review.

Authors:  Ryan W Morgan; Matthew P Kirschen; Todd J Kilbaugh; Robert M Sutton; Alexis A Topjian
Journal:  JAMA Pediatr       Date:  2021-03-01       Impact factor: 16.193

8.  What is the potential for over-compression using current paediatric chest compression guidelines? - A chest computed tomography study.

Authors:  Gene Yong-Kwang Ong; Aloysius Jian Feng Ang; Amirzeb S O Aurangzeb; Elisabeth Sue Shuen Fong; Jun Yuan Tan; Zhao Jin Chen; Yiong Huak Chan; Phua Hwee Tang; Jen Heng Pek; Ian Maconochie; Kee Chong Ng; Vinay Nadkarni
Journal:  Resusc Plus       Date:  2021-03-27

9.  The physiologic response to rescue therapy with vasopressin versus epinephrine during experimental pediatric cardiac arrest.

Authors:  Julia C Slovis; Ryan W Morgan; William P Landis; Anna L Roberts; Alexandra M Marquez; Constantine D Mavroudis; Yuxi Lin; Tiffany Ko; Vinay M Nadkarni; Robert A Berg; Robert M Sutton; Todd J Kilbaugh
Journal:  Resusc Plus       Date:  2020-11-25

10.  Haemodynamic-directed cardiopulmonary resuscitation promotes mitochondrial fusion and preservation of mitochondrial mass after successful resuscitation in a pediatric porcine model.

Authors:  Kumaran Senthil; Ryan W Morgan; Marco M Hefti; Michael Karlsson; Andrew J Lautz; Constantine D Mavroudis; Tiffany Ko; Vinay M Nadkarni; Johannes Ehinger; Robert A Berg; Robert M Sutton; Francis X McGowan; Todd J Kilbaugh
Journal:  Resusc Plus       Date:  2021-04-29
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