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Incremental Prognostic Value of Ventricular-Arterial Coupling over Ejection Fraction in Patients with Maintenance
Masaru Obokata1, Koji Kurosawa1, Hideki Ishida2
1Department of Medicine and Biological Science, Gunma University Graduate School of Medicine, Maebashi, Gunma.
Insights
Left ventricular ejection fraction (LVEF) is a predictor of adverse outcomes in hemodialysis patients. However, ventricular-arterial coupling (Ea/Ees) offers superior prognostic value over LVEF alone for predicting adverse events in this population.
Area of Science:
- Cardiology
- Nephrology
- Biomedical Engineering
Background:
- Left ventricular ejection fraction (LVEF) predicts outcomes in hemodialysis patients.
- LVEF is influenced by contractility, loading, and coupling.
- Predictive value of these components over LVEF needs further investigation.
Purpose of the Study:
- To determine if contractility, loading, and coupling better predict adverse outcomes in hemodialysis patients.
- To assess the incremental prognostic value of these parameters over clinical scores and LVEF.
Main Methods:
- Prospective follow-up of 234 hemodialysis patients for adverse outcomes.
- Noninvasive estimation of load-independent contractility (Ees, PRSW) and arterial afterload (Ea).
- Assessment of ventricular-arterial coupling (Ea/Ees), GLS, and E/E'.
Main Results:
- Ea/Ees, contractility (Ees, PRSW), GLS, and E/E' were independently associated with adverse outcomes.
- Ea/Ees demonstrated incremental predictive value over clinical scores and LVEF.
- Arterial afterload parameters did not show independent association with outcomes.
Conclusions:
- Left ventricular contractility and ventricular-arterial coupling (Ea/Ees) are independently associated with adverse outcomes in hemodialysis patients.
- Ea/Ees provides incremental prognostic value beyond clinical scores and LVEF.
Background:
Left ventricular ejection fraction (LVEF) is a predictor of adverse outcomes in hemodialysis patients. LVEF is, however, an integral parameter determined by contractility, loading condition, and coupling. We sought to determine whether these components would better predict adverse outcomes and have incremental prognostic value over a validated clinical score and EF.
Methods:
Two hundred thirty-four hemodialysis patients were prospectively followed up for primary composite endpoint: all-cause death, nonfatal myocardial infarction, and hospitalization due to worsening heart failure (HF). Load-independent contractility (end-systolic elastance [Ees] and preload recruitable stroke work [PRSW]) and arterial afterload (arterial elastance [Ea]) were noninvasively estimated. Ventricular-arterial coupling was assessed using the Ea/Ees ratio. LV global longitudinal strain (GLS) and mitral E-wave over annular velocity E' ratio (E/E') were also measured.
Results:
During a median follow-up of 776 days, 30 patients developed the primary endpoint. Ees, PRSW, GLS, S', Ea/Ees, E/E', and EF were independently associated with the outcome after adjusting for the clinical score and prior HF hospitalization, whereas end-diastolic volume index or arterial afterload parameters were not. The nested Cox models indicated that Ea/Ees had independent and incremental predictive value over the model based on the score and either EF or E/E'. Furthermore, Ea/Ees continued to have predictive value after adjusting for GLS. The classification and regression analysis stratified event rates ranging from 4.2% to 68.8%.
Conclusions:
LV contractility and Ea/Ees were independently associated with adverse outcome in hemodialysis patients. Ea/Ees had an incremental prognostic value over the clinical score and EF.
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