Tissue Doppler Imaging

Tissue Doppler Imaging (TDI) is an echocardiographic technique that measures the velocity of moving heart muscle, helping clinicians assess cardiac function beyond the appearance of chambers and valves. It uses Doppler principles to detect frequency shifts from myocardial motion, displaying tissue velocities with color mapping or spectral waveforms during systole and diastole; measurements such as annular e′ can characterize relaxation. TDI supports evaluation of ventricular systolic and diastolic performance, regional wall motion, and mechanical dyssynchrony, contributing to assessment of heart failure, ischemia, cardiomyopathies, and treatment response. Because it provides quantitative motion data, TDI complements conventional ultrasound and strengthens noninvasive cardiovascular assessment.

Tissue Doppler Imaging - Related Videos

Research

JoVE Journal - Biology

Doppler Ultrasonography for Live Imaging and Quantification of Ovarian Vascular Function in Mice

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Cited by 1 •

2025

Changes in ovarian blood flow during the preovulatory period are essential for ovulation. Doppler ultrasonography has been used in humans and large animals to assess ovarian hemodynamics and perfusion. A protocol is presented for applying Doppler ultrasonography to evaluate ovarian hemodynamics during the preovulatory and periovulatory phases in mice.

Non-Invasive High-Frequency Ultrasound and Doppler Imaging of Rat Brain Hemodynamics

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2025

Source: Giustetto, P., et. al., Non-invasive Parenchymal, Vascular and Metabolic High-frequency Ultrasound and Photoacoustic Rat Deep Brain Imaging. J. Vis. Exp. (2015)In this video, we demonstrate the use of high-frequency ultrasound and photoacoustic imaging to study the vasculature and hemoglobin content in the rat brain. This method provides detailed insights into cerebral perfusion and blood oxygenation, enabling non-invasive analysis of brain vascular structures and oxygen distribution.

Using Laser Doppler Imaging and Monitoring to Analyze Spinal Cord Microcirculation in Rat

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Cited by 5 •

2018

Here we present a combination of laser Doppler perfusion imaging (LDPI) and laser Doppler perfusion monitoring (LDPM) to measure spinal cord local blood flows and oxygen saturation (SO2), as well as a standardized procedure for introducing spinal cord trauma on rat.

Functional Imaging of Cerebral Blood Flow Using Transcranial Doppler Ultrasound

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2025

Source: Hage, B. D. et. al., Functional Transcranial Doppler Ultrasound for Monitoring Cerebral Blood Flow. J. Vis. Exp. (2021) This video demonstrates the use of Doppler ultrasound as a functional imaging tool to measure cerebral blood flow velocity, or CBFV in real time. It highlights how frequency shifts in the middle cerebral artery during tasks like breath-holding reveal changes in CBFV, offering insights into brain activity and vascular dynamics.

Blood Flow Imaging with Ultrafast Doppler

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Cited by 10 •

2020

This protocol shows how to apply ultrafast ultrasound Doppler imaging to quantify blood flows. After a 1 s long acquisition, the experimenter has access to a movie of the full field of view with axial velocity values for each pixel every ≈0.3 ms (depending on the ultrasound time of flight).

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