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Published on: May 3, 2018
Arterial Stiffness Is Associated With QTc Interval Prolongation in Patients With Heart Failure
Salah Al-Zaiti1, Samir Saba2, Rodolfo Pike3
11 University of Pittsburgh, Pittsburgh, PA, USA.
Insights
Arterial stiffness, a marker of endothelial dysfunction, is linked to prolonged corrected QT (QTc) intervals in heart failure patients without conduction issues. This finding may inform strategies to reduce cardiac event risk.
Area of Science:
- Cardiology
- Clinical Physiology
Background:
- Prolonged corrected QT (QTc) interval is a significant risk factor for adverse cardiac events.
- Understanding QTc determinants is crucial for managing high-risk heart failure patients.
- Arterial stiffness is investigated as a potential determinant of QTc prolongation in heart failure.
Purpose of the Study:
- To evaluate the role of arterial stiffness as a determinant of QTc interval prolongation in ambulatory heart failure patients.
- To identify physiologic correlates of QTc prolongation in this population.
Main Methods:
- Observational study of ambulatory heart failure patients (NYHA Classes I-II).
- Noninvasive 12-lead electrocardiography (ECG) and hemodynamic monitoring (BioZ Dx impedance cardiography) were performed.
- Pearson's r coefficients and multivariate linear regression were used to assess correlations.
Main Results:
- In patients with narrow QRS complexes, QTc interval moderately correlated with cardiac output, left cardiac work index, systemic vascular resistance, and total arterial compliance.
- Increasing systemic vascular resistance and decreasing total arterial compliance independently predicted QTc prolongation (R² = .54).
- No significant correlations were found in patients with pacing or bundle branch block (BBB).
Conclusions:
- Arterial stiffness, an indirect measure of endothelial dysfunction, is associated with QTc interval prolongation in heart failure patients without conduction abnormalities.
- These findings highlight the link between vascular health and cardiac electrical stability.
Background:
A prolonged corrected QT (QTc) interval is a known risk factor for adverse cardiac events. Understanding the determinants and physiologic correlates of QTc is necessary for selecting proper strategies to reduce the risk of adverse events in high-risk patients. We sought to evaluate the role of arterial stiffness in heart failure as a determinant of QTc prolongation.
Method:
This was an observational study that recruited ambulatory heart failure patients (New York Heart Association Classes I-II) from an outpatient heart failure clinic. In the supine resting position, consented patients underwent noninvasive 12-lead electrocardiograph (ECG) and hemodynamic monitoring using BioZ Dx impedance cardiography. ECGs were evaluated by a reviewer blinded to clinical data, and QTc interval was automatically computed. Patients with pacing or bundle branch block (BBB) were analyzed separately. Strengths of associations were evaluated using Pearson's r coefficients and multivariate linear regression.
Results:
The final sample ( N = 44) was 62 ± 13 years of age and 64% male with ejection fraction of 34% ± 12%. At univariate level, QTc interval moderately ( r > .50) correlated with cardiac output, left cardiac work index, systemic vascular resistance, and total arterial compliance in patients with intrinsically narrow QRS complexes. At the multivariate level, increasing systemic vascular resistance and decreasing total arterial compliance remained independent predictors of widening QTc interval in this group ( R2 = .54). No significant correlations were seen in patients with pacing or BBB.
Conclusions:
In the absence of conduction abnormalities, magnitude of arterial stiffness, an indirect measure of endothelial dysfunction, is associated with QTc interval prolongation.
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