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Updated: Sep 23, 2026

Biventricular Assessment of Cardiac Function and Pressure-Volume Loops by Closed-Chest Catheterization in Mice
Published on: June 15, 2020
Assessment and consequences of the constant-volume attribute of the four-chambered heart
Andrew W Bowman1, Sándor J Kovács
1Cardiovascular Biophysics Laboratory, Barnes-Jewish Hospital, Washington University Medical Center, Box 8086, 660 S. Euclid Avenue, St. Louis, MO 63110, USA.
Insights
The four-chambered heart acts as a constant-volume pump within 5% variation throughout the cardiac cycle. Cardiac magnetic resonance imaging validated this hypothesis in humans, confirming predictable relationships between atrial ejection fraction and chamber volumes.
Area of Science:
- Cardiovascular Physiology
- Medical Imaging
Background:
- The constant-volume hypothesis posits invariant pericardial volume during the cardiac cycle.
- Previous canine studies suggested ~5% pericardial volume constancy.
- Human validation using advanced imaging was lacking.
Purpose of the Study:
- To validate the constant-volume hypothesis of the human heart.
- To assess the relationship between atrial ejection fraction and chamber equilibrium volumes.
- To utilize cardiac magnetic resonance imaging (MRI) for precise volumetric measurements.
Main Methods:
- Cardiac MRI was performed on 11 healthy volunteers and 1 individual lacking a pericardium.
- Short-axis cine MRI covered the entire heart, divided into 20 cardiac cycle intervals.
- Pericardial and chamber volumes were measured across all slices and time intervals.
Main Results:
- In healthy subjects, pericardial volume remained constant within 5 ± 1% throughout the cardiac cycle.
- Maximum variation in pericardial volume occurred near end systole.
- The individual without a pericardium showed a 12% variation in total heart volume.
- MRI data accurately supported predicted relationships between atrial ejection fraction and chamber volumes.
Conclusions:
- The human four-chambered heart functions as a constant-volume pump with minimal variation (5 ± 1%).
- Constant-volume modeling accurately predicts physiological relationships, including those involving atrial ejection fraction.
- Cardiac MRI is a valuable tool for validating cardiovascular hypotheses and exploring functional anatomy.
Abstract:
The constant-volume hypothesis regarding the four-chambered heart states that total pericardial volume remains invariant throughout the cardiac cycle. Previous canine studies have indicated that the pericardial volume remains constant within 5%; however, this hypothesis has not been validated in humans using state-of-the-art technology. The constant-volume hypothesis has several predictable functional consequences, including a relationship between atrial ejection fraction and chamber equilibrium volumes. Using cardiac magnetic resonance (MR) imaging (MRI), we measured the extent to which the constant-volume attribute of the heart is valid, and we tested the accuracy of the predicted relationship between atrial ejection fraction and chamber equilibrium volumes. Eleven normal volunteers and one volunteer with congenital absence of the pericardium were imaged using a 1.5-T MR scanner. A short-axis cine-loop stack covering the entire heart was acquired. The cardiac cycle was divided into 20 intervals. For each slice and interval, pericardial volumes were measured. The slices were stacked and summed, and total pericardial volume as a function of time was determined for each subject. In the normal subjects, chamber volumes at ventricular end diastole, end systole, and diastasis were measured. Pericardial volume remained invariant within 5 +/- 1% in normal subjects; maximum variation occurred near end systole. In the subject with congenital absence of the pericardium, total heart volume, defined by the epicardial surface, varied by 12%. The predictions of the relationship between atrial ejection fraction and chamber equilibrium volumes were well fit by MRI data. In normal subjects, the four-chambered heart is a constant-volume pump within 5 +/- 1%, and constant-volume-based modeling accurately predicts previously unreported physiological relationships.
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