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Cutoff Value of Phase Angle by Bioelectrical Impedance Analysis at Admission as a Prognostic Factor in Patients with Acute Heart Failure
Published on: June 10, 2025
Global Longitudinal Strain to Predict Mortality in Patients With Acute Heart Failure
Jin Joo Park1, Jun-Bean Park2, Jae-Hyeong Park3
1Cardiovascular Center and Department of Internal Medicine, Seoul National University College of Medicine, Seoul National University Bundang Hospital, Seongnam, Republic of Korea.
Insights
Global longitudinal strain (GLS) is a better predictor of mortality in heart failure (HF) patients than left ventricular ejection fraction (LVEF). GLS measurement should be considered standard for all HF patients.
Area of Science:
- Cardiology
- Cardiovascular Imaging
- Heart Failure Research
Background:
- Heart failure (HF) classification relies on left ventricular ejection fraction (LVEF), but its prognostic value is debated.
- Myocardial strain, specifically global longitudinal strain (GLS), is recognized as a prognostic factor independent of LVEF.
Purpose of the Study:
- To evaluate the prognostic significance of global longitudinal strain (GLS) in a large cohort of patients diagnosed with acute heart failure (HF).
Main Methods:
- GLS and LVEF were assessed in 4,172 acute HF patients.
- Patients were stratified by LVEF (reduced, midrange, preserved) and GLS severity (mildly, moderately, severely reduced).
- The primary outcome was 5-year all-cause mortality.
Main Results:
- A total of 40.4% of patients died within 5 years.
- Reduced GLS, particularly severe reductions (GLS ≤8.0%), was significantly associated with higher mortality (log-rank p < 0.001).
- Each 1% increase in GLS correlated with a 5% reduction in mortality risk (p < 0.001), while LVEF showed no association with mortality in multivariable analysis.
Conclusions:
- Global longitudinal strain (GLS) demonstrates superior prognostic value compared to LVEF in acute heart failure (HF) patients.
- The study suggests GLS should be considered a standard measurement for all HF patients.
- Further research is recommended to validate the clinical utility of GLS as a standard HF metric.
Background:
Heart failure (HF) is currently classified according to left ventricular ejection fraction (LVEF); however, the prognostic value of LVEF is controversial. Myocardial strain is a prognostic factor independently of LVEF.
Objectives:
The authors sought to evaluate the prognostic value of global longitudinal strain (GLS) in patients with HF.
Methods:
GLS was measured in 4,172 consecutive patients with acute HF. Patients were categorized as either HF with reduced (LVEF <40%), midrange (LVEF 40% to 49%), or preserved ejection fraction (LVEF ≥50%) and were also classified as having mildly (GLS >12.6%), moderately (8.1% < GLS <12.5%), or severely (GLS ≤8.0%) reduced strain. The primary endpoint was 5-year all-cause mortality.
Results:
Mean GLS was 10.8%, and mean LVEF was 40%. Overall, 1,740 (40.4%) patients had died at 5 years. Patients with reduced ejection fraction had slightly higher mortality than those with midrange or preserved ejection fraction (41%, 38%, and 39%, respectively; log-rank p = 0.031), whereas patients with reduced strain had significantly higher mortality (severely reduced GLS, 49%; moderately reduced GLS, 38%; mildly reduced GLS, 34%; log-rank p < 0.001). In multivariable analysis, each 1% increase in GLS was associated with a 5% decreased risk for mortality (p < 0.001). Patients with moderate (hazard ratio: 1.31; 95% confidence interval: 1.13 to 1.53) and severe GLS reductions (hazard ratio: 1.61; 95% confidence interval: 1.36 to 1.91) had higher mortality, but LVEF was not associated with mortality.
Conclusions:
In patients with acute HF, GLS has greater prognostic value than LVEF. Therefore, the authors suggest that GLS should be considered as the standard measurement in all patients with HF. This new concept needs validation in further studies.
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