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Updated: May 5, 2026

Transthoracic Speckle Tracking Echocardiography for the Quantitative Assessment of Left Ventricular Myocardial Deformation
Published on: October 20, 2016
Speckle-Tracking Strain Echocardiography for the Assessment of Left Ventricular Structure and Function: A Scientific
Insights
Global longitudinal strain (GLS) assessed by speckle-tracking echocardiography offers superior diagnostic and prognostic value for cardiac diseases compared to ejection fraction. GLS detects subclinical dysfunction earlier and is highly reproducible, enhancing patient management.
Area of Science:
- Cardiology
- Medical Imaging
- Echocardiography
Background:
- Left ventricular systolic function assessment is crucial for cardiac disease management.
- Traditional ejection fraction methods have limitations including geometric assumptions and reader variability.
- Myocardial fiber complexity challenges traditional assessments.
Purpose of the Study:
- Review principles and techniques of speckle-tracking echocardiography (STE) strain imaging.
- Provide an evidence-based review of STE applications in various cardiovascular disorders.
- Explore STE utility in device therapies and outline future directions.
Main Methods:
- Utilizes 2D speckle-tracking echocardiography to measure myocardial strain in longitudinal, circumferential, and radial planes.
- Compares the diagnostic and prognostic value of global longitudinal strain (GLS) with ejection fraction.
- Reviews existing literature on STE applications and potential future uses.
Main Results:
- Global longitudinal strain (GLS) demonstrates superior diagnostic and prognostic capabilities over ejection fraction.
- GLS is highly reproducible and detects subclinical cardiac dysfunction before ejection fraction declines.
- STE offers incremental prognostic and therapeutic value as a biomarker.
Conclusions:
- Speckle-tracking echocardiography, particularly GLS, represents a significant advancement in assessing left ventricular systolic function.
- STE provides superior insights into cardiac health and disease compared to traditional methods.
- Integrating GLS into clinical practice holds promise for improved patient outcomes and management strategies.
Abstract:
Assessment of left ventricular systolic function is essential for diagnosing and managing cardiac diseases and provides important prognostic information to the treating clinician. However, traditional methods for assessing left ventricular systolic function such as ejection fraction are limited by their reliance on geometric assumptions, subjective reader interpretation, sensitivity to loading conditions and volume, and reflection of a single plane of motion. In addition to interobserver and intraobserver variability and technical confounders, this evaluation is complicated by the complex 3-dimensional organization of the myocardial fibers, which are oriented longitudinally in the subendocardium, transversely in the midmyocardium, and obliquely in the subepicardium. Conversely, 2-dimensional speckle-tracking echocardiography measures left ventricular deformation as myocardial strain in the 3 planes of chamber motion: longitudinal, circumferential, and radial. From a clinical perspective, left ventricular global longitudinal strain offers superior diagnostic and prognostic value across the spectrum of cardiovascular disorders compared with ejection fraction, is highly reproducible, and detects subclinical dysfunction before the ejection fraction declines. Given the expanding clinical utility of speckle-tracking echocardiography and the incremental prognostic and therapeutic value of integrating global longitudinal strain into clinical practice as a potential biomarker, the objectives of this scientific statement are (1) to review the principles and technical aspects of speckle-tracking echocardiography strain imaging; (2) to provide a practical, evidence-based review of the application of speckle-tracking echocardiography in heart failure, cardiomyopathies, ischemic heart disease, valvular disease, and cardio-oncology; (3) to explore the potential utility of speckle-tracking echocardiography in cardiac resynchronization and implantable cardioverter defibrillator therapy; and (4) to outline the future directions of speckle-tracking echocardiography.
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