Related Experiment Video
Updated: Dec 26, 2025

Evaluation of Right Ventricular Function in Experimental Models of Pulmonary Arterial Hypertension
Published on: June 27, 2025
Alternative Approaches to the Assessment of the Systemic Circulation and Left Ventricular Performance: A
Sarah Howell1,2,3, Lindsay M Burrowes1,2,3, Israel Belenkie1,2
1Libin Cardiovascular Institute of Alberta, Calgary, Alberta, Canada.
Insights
Systemic vascular conductance (G) and the head-capacity relation offer novel insights into cardiovascular function. G influences driving pressure, while decreases in G help restore arterial pressure during hypotension.
Area of Science:
- Cardiovascular Physiology
- Hemodynamics
- Integrative Physiology
Background:
- Traditional assessments of systemic circulation and left ventricular (LV) performance exist.
- Novel approaches using systemic vascular conductance (G) and the head-capacity relation are proposed.
Purpose of the Study:
- To examine systemic circulation and LV performance using nonconventional methods.
- To offer a novel interpretation of integrated cardiovascular function.
Main Methods:
- Measurements included LV pressure, central aortic pressure, central venous pressure, and aortic flow in anesthetized pigs.
- Calculations involved heart rate, stroke volume, cardiac index (CI), mean LV pressure, and arteriovenous pressure difference.
- Effects of altered loading conditions (phenylephrine, isoproterenol, sodium nitroprusside, aortic constriction) were studied.
Main Results:
- Systemic vascular conductance (G) increased with sodium nitroprusside and isoproterenol.
- A maximum head-capacity curve was derived using nonlinear regression.
- The head-capacity relation and conductance plots, using CI as a common axis, showed CI as both cardiac output and circulatory input.
Conclusions:
- Systemic vascular conductance (G) determines driving pressure at a given cardiac index (CI).
- Decreases in G can compensate for arterial hypotension by restoring arteriovenous pressure difference and arterial pressure.
Background:
The purpose of this article is to examine the systemic circulation and left ventricular (LV) performance by alternative, nonconventional approaches: systemic vascular conductance (G ) and the head-capacity relation (ie, the relation between LV pressure and cardiac output), respectively; in so doing, we aspired to present a novel and improved interpretation of integrated cardiovascular function.
Methods:
In 16 open-chest, anaesthetized pigs, we measured LV pressure (P ), central aortic pressure (P ), and central venous pressure (P ) and aortic flow (Q ). We calculated heart rate (HR), stroke volume, cardiac index (CI = cardiac output/body weight), mean PLV ( , and the average arteriovenous pressure difference ( ); G = CI/( ). We studied the effects of changing loading conditions with the administration of phenylephrine (Δ ≥ +25 mm Hg), isoproterenol (ΔHR ∼+25%), sodium nitroprusside (Δ ≥ -25 mm Hg), and proximal aortic constriction (to maximize developed P and minimize Q ).
Results:
Sodium nitroprusside and isoproterenol increased G compared with phenylephrine and constriction. A maximum head-capacity curve was derived from pooled data using nonlinear regression on the maximum values in Q bins 12.5 mL/min/kg wide. The head-capacity relation and the plots of conductance were combined using CI as a common axis, which illustrated that CI is the output of the heart and the input of the circulation.
Conclusions:
Thus, at a given CI, G determines the driving pressure and, thereby, P . We also demonstrated how decreases in G compensate for arterial hypotension by restoring the arteriovenous pressure difference and arterial pressure.
Related Concept Videos
Assessment of the Cardiovascular System IV: Auscultation
Normal Heart Sounds
S1 (First Heart Sound)-
S1 is made by the closure of the mitral and tricuspid valves (atrioventricular valves), marking the beginning of systole.
S2 (Second Heart Sound)-
S2 is made by the closure of the aortic and pulmonic valves (semilunar valves), marking the end of the systole.
Imaging Studies for Cardiovascular System II:Types of Echocardiography
Types of Echocardiography
Transthoracic Echocardiography (TTE)
TTE is the most common type of echocardiogram which involves placing a transducer on the patient's chest, emitting sound waves to create heart images. TTE is invaluable for evaluating the heart's size, structure, and motion, making it particularly useful for...

