Related Experiment Video
Updated: Jan 30, 2026

Normothermic Ex Situ Heart Perfusion in Working Mode: Assessment of Cardiac Function and Metabolism
Published on: January 12, 2019
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.
Abstract:
The current standard method for organ preservation (cold storage, CS), exposes the heart to a period of cold ischemia that limits the safe preservation time and increases the risk of adverse post-transplantation outcomes. Moreover, the static nature of CS does not allow for organ evaluation or intervention during the preservation interval. Normothermic ex situ heart perfusion (ESHP) is a novel method for preservation of the donated heart that minimizes cold ischemia by providing oxygenated, nutrient-rich perfusate to the heart. ESHP has been shown to be non-inferior to CS in the preservation of standard-criteria donor hearts and has also facilitated the clinical transplantation of the hearts donated after the circulatory determination of death. Currently, the only available clinical ESHP device perfuses the heart in an unloaded, non-working state, limiting assessments of myocardial performance. Conversely, ESHP in working mode provides the opportunity for comprehensive evaluation of cardiac performance by assessment of functional and metabolic parameters under physiologic conditions. Moreover, earlier experimental studies have suggested that ESHP in working mode may result in improved functional preservation. Here, we describe the protocol for ex situ perfusion of the heart in a large mammal (porcine) model, which is reproducible for different animal models and heart sizes. The software program in this ESHP apparatus allows for real-time and automated control of the pump speed to maintain desired aortic and left atrial pressure and evaluates a variety of functional and electrophysiological parameters with minimal need for supervision/manipulation.
Related Concept Videos
Physiology of the Heart: The Cardiac Cycle
Diastole: The Relaxation Phase
During diastole, all four heart chambers relax. The atrioventricular (AV) valves open, and the semilunar valves close. This phase sees the lowest chamber pressures, promoting ventricular filling. Venous blood enters the heart through the...
Assessment of Diffusion and Perfusion
The Role of Diffusion in Respiration
Diffusion is the process by which molecules move from an area of higher concentration to an area of lower concentration. In the respiratory system, this...
Cardiac Output I:Effect of Heart Rate on Cardiac Output
Cardiac output (CO) refers to the total amount of blood ejected by one of the ventricles in liters per minute (L/min). In a resting adult, CO ranges from 5 to 6 L/min, adjusting according to the body's metabolic requirements.
Effect of Heart Rate on Cardiac Output
Cardiac output adapts to metabolic demands during stress, physical activity, or illness. The autonomic nervous system regulates heart rate via the sinoatrial node. The parasympathetic nervous system decreases heart...
Cardiac Catheterization II: Right Heart Catheterization
What is a Mode?
There can be more than one mode in a data set if multiple values have the same highest frequency. For instance, suppose that the Statistics exam scores of 20 students are: 50; 53; 59; 59; 63; 63; 72; 72; 72; 72; 72; 76; 78; 81; 83; 84; 84; 84; 90; 93. Here, the mode is 72, as it occurs most frequently, five times.
A data set with two modes is called bimodal. For example,...
Anatomy of the Heart

