Normothermic Ex Situ Heart Perfusion in Working Mode: Assessment of Cardiac Function and Metabolism

Sanaz Hatami1, Christopher W White1, Martin Ondrus1

  • 1Department of Surgery, Faculty of Medicine, University of Alberta.

Insights

Normothermic ex situ heart perfusion (ESHP) offers an alternative to cold storage for heart preservation. Working mode ESHP allows for detailed cardiac function assessment and may improve organ preservation outcomes.

Area of Science:

  • Cardiovascular Surgery
  • Organ Transplantation
  • Biomedical Engineering

Background:

  • Current cold storage (CS) limits heart preservation time and increases post-transplant risks.
  • CS is static, preventing organ evaluation or intervention during preservation.
  • Normothermic ex situ heart perfusion (ESHP) minimizes cold ischemia with oxygenated, nutrient-rich perfusate.

Purpose of the Study:

  • To describe a protocol for ex situ heart perfusion in a large mammal model.
  • To detail a working mode ESHP system for comprehensive cardiac performance evaluation.
  • To establish a reproducible method for different animal models and heart sizes.

Main Methods:

  • Utilized a large mammal (porcine) model for ex situ heart perfusion.
  • Employed an ESHP apparatus with software for real-time, automated control of perfusion parameters.
  • Monitored functional and electrophysiological parameters under physiologic conditions.

Main Results:

  • The described protocol is reproducible across different animal models and heart sizes.
  • The ESHP system allows for automated control of aortic and left atrial pressure.
  • The system facilitates comprehensive evaluation of cardiac performance in working mode.

Conclusions:

  • Working mode ESHP provides a platform for detailed cardiac function assessment.
  • This ESHP protocol may improve functional preservation compared to traditional methods.
  • The developed system enables advanced evaluation and potential intervention during organ preservation.

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