Improvement of Heart Failure Discrimination by the Integration of the Left Ventricle Global Longitudinal Strain

Alberto Cordero1,2,3, Mª Amparo Quintanilla1, Cristina Torres1

  • 1Cardiology Department, Hospital Universitario de San Juan, 03550 San Juan de Alicante, Spain.

Clinics and Practice
|March 27, 2026
PubMed

Insights

Assessing left ventricular global longitudinal strain (GLS) significantly improves diagnosing chronic heart failure (HF) in stable outpatients. This echocardiographic measure enhances diagnostic accuracy beyond traditional clinical and imaging parameters.

Area of Science:

  • Cardiology
  • Medical Imaging
  • Diagnostic Techniques

Background:

  • Diagnosing chronic heart failure (HF) in ambulatory patients presents clinical challenges.
  • Echocardiography is a primary diagnostic tool, but the role of left ventricular global longitudinal strain (GLS) requires further clarification.

Purpose of the Study:

  • To evaluate the diagnostic utility of GLS in identifying chronic HF in stable outpatients.
  • To assess the improvement in diagnostic capacity by incorporating GLS with existing clinical and echocardiographic parameters.

Main Methods:

  • A cross-sectional study involving 1362 stable outpatients.
  • Global longitudinal strain (GLS) was measured using automated software analyzing three apical planes of the left ventricle (LV).
  • Reclassification indexes were used to quantify the diagnostic improvement from adding GLS.

Main Results:

  • Patients with HF showed lower ejection fraction (EF) and GLS, and impaired diastolic function.
  • A GLS < -14 was observed in 92.8% of HF patients versus 36.1% of non-HF patients.
  • Inclusion of GLS significantly increased the area under the curve (AUC) and reclassification index for HF (19.8%) and HFpEF (38.8%).

Conclusions:

  • Left ventricular GLS assessment enhances diagnostic discrimination for chronic heart failure in stable patients.
  • GLS is a valuable echocardiographic parameter for improving HF diagnosis, particularly in HF with preserved ejection fraction (HFpEF).

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