Literature DB >> 33337788

The Cardiac Physiology Underpinning Exsanguination Cardiac Arrest: Targets for Endovascular Resuscitation.

Marta J Madurska1,2, Hossam Abdou1, Lai Yee Leung2,3, Michael J Richmond1,2, Noha N Elansary1, Thomas M Scalea1, Peter Hu4, Jonathan J Morrison1.   

Abstract

ABSTRACT: Exsanguination leading to cardiac arrest is the terminal phase of uncontrolled hemorrhage. Resuscitative interventions have focused on preload and afterload support. Outcomes remain poor due to several factors but poor coronary perfusion undoubtedly plays a role. The aim of this study is to characterize the relationship between arterial pressure and flow during hemorrhage in an effort to better describe the terminal phases of exsanguination.Male swine weighing 60 kg to 80 kg underwent splenectomy and instrumentation followed by a logarithmic exsanguination until asystole. Changes in hemodynamic parameters over time were compared using one-way, repeated measures analysis of variance.Nine animals weighing 69 ± 15 kg were studied. Asystole occurred at 53 ± 13 min when 52 ± 11% of total blood volume has been shed. The greatest fall in mean hemodynamic indices were noted in the first 15 min: SBP (80-42 mm Hg, P = 0.02), left ventricular end-diastolic volume (94-52 mL, P = 0.04), cardiac output (4.8-2.4 L/min, P = 0.03), coronary perfusion pressure (57-30 mm Hg, P = 0.01), and stroke volume (60-25 mL, P = 0.02). This corresponds to the greatest rate of exsanguination. Organized cardiac activity was observed until asystole without arrythmias. Coronary flow was relatively preserved throughout the study, with a precipitous decline once mean arterial pressure was less than 20 mm Hg, leading to asystole.In this model, initial hemodynamic instability was due to preload failure, with asystole occurring relatively late, secondary to failure of coronary perfusion. Future resuscitative therapies need to directly address coronary perfusion failure if effective attempts are to be made to salvage these patients.
Copyright © 2020 by the Shock Society.

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Year:  2021        PMID: 33337788     DOI: 10.1097/SHK.0000000000001607

Source DB:  PubMed          Journal:  Shock        ISSN: 1073-2322            Impact factor:   3.454


  4 in total

1.  Automatic Hemorrhage Detection From Color Doppler Ultrasound Using a Generative Adversarial Network (GAN)-Based Anomaly Detection Method.

Authors:  Jhimli Mitra; Jianwei Qiu; Michael MacDonald; Prem Venugopal; Kirk Wallace; Hossam Abdou; Michael Richmond; Noha Elansary; Joseph Edwards; Neerav Patel; Jonathan Morrison; Luca Marinelli
Journal:  IEEE J Transl Eng Health Med       Date:  2022-08-19

2.  The Underlying Cardiovascular Mechanisms of Resuscitation and Injury of REBOA and Partial REBOA.

Authors:  David P Stonko; Joseph Edwards; Hossam Abdou; Noha N Elansary; Eric Lang; Samuel G Savidge; Caitlin W Hicks; Jonathan J Morrison
Journal:  Front Physiol       Date:  2022-05-09       Impact factor: 4.755

3.  A technical and data analytic approach to pressure-volume loops over numerous cardiac cycles.

Authors:  David P Stonko; Joseph Edwards; Hossam Abdou; Noha N Elansary; Eric Lang; Samuel G Savidge; Jonathan J Morrison
Journal:  JVS Vasc Sci       Date:  2022-01-04

4.  Characterization of cerebral blood flow during open cardiac massage in swine: Effect of volume status.

Authors:  Neerav Patel; Joseph Edwards; Hossam Abdou; David P Stonko; Rebecca N Treffalls; Noha N Elansary; Thomas Ptak; Jonathan J Morrison
Journal:  Front Physiol       Date:  2022-10-04       Impact factor: 4.755

  4 in total

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