Related Experiment Video
Updated: Aug 17, 2026

Transthoracic Echocardiography in Mice
Published on: May 28, 2010
Right Ventricular Outflow Tract Velocity Time Interval: An Invaluable Yet Forgotten Echocardiographic Variable
Khalid Sawalha1, Srikanth Vallurupalli1, Angel López-Candales2
1Cardiovascular Medicine, University of Arkansas for Medical Sciences, Little Rock, Arkansas, USA.
Background:
Echocardiographic examination of the right ventricular outflow tract (RVOT) has been invaluable in examining pulmonary artery (PA) flows and RV hemodynamics in response to increasing afterload. Currently, the TAPSE/PASP ratio is the preferred noninvasive variable for this assessment.
Methods:
Our main aim was to determine the specific relationship that might exist between RVOT VTI Doppler measurements and TAPSE/PASP ratios across a wide range of different left ventricular (LV) ejection fractions and PASP values.
Results:
Our study is the first to provide cutoff values for RVOT VTI according to the prevailing PA-RV hemodynamics. With TAPSE values >2 cm, normal RVOT VTI values should be >13 cm. However, when PASP or PVR are used in the metric analysis, RVOT VTI values >15 cm are, if PASP values <35 mmHg or PVR is <1.6 WU. Most interestingly, we found no correlation between RVOT VTI and the TAPSE/PASP ratio. Instead, the RVOT VTI/PVR ratio was very useful and appears as a potentially echocardiographic alternative to assess RV-PA coupling.
Discussion:
Even when both TAPSE and RVOT VTI, as well as PASP and PVR, convey somewhat similar information, significant anatomical and functional differences exist between these variables. These differences might explain why the RVOT VTI/PVR ratio might be more useful than TAPSE/PASP, particularly given the limitations of using TAPSE in certain clinical scenarios and the more reliable hemodynamic data provided by PVR. Regardless, additional studies are now needed to provide prospective comparisons between both ratios.
More Related Videos
Related Concept Videos
Speed of Sound in Gases
Deriving the Speed of Sound in a Liquid
The speed of sound in fluids can be derived by considering a mechanical wave propagating...
Heart Valves
The AV valves prevent the backflow of blood from the ventricles to the atria during ventricular contraction. These valves function with the assistance of the chordae tendineae and papillary muscles. When the ventricles are relaxed, the chordae tendineae are slack, allowing blood to flow from the atria into the...
Heart Sounds
Auscultation is the process of listening to these internal body sounds using a stethoscope. The heart produces four types of sounds, but only two—S1 and S2—can usually be heard with a stethoscope.
S1, also known as the "lub" sound, is caused by the closure of atrioventricular (A-V) valves at the...
Bernoulli's Equation: Problem Solving
The first step is to compute the cross-sectional areas of the pipe and the Venturi throat to analyze the pressure difference indicated by the pressure gauge. Next, the continuity equation is...
Application of Integration: Problem Solving

