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Published on: May 21, 2017
Pathophysiological background and prognostic implication of systolic aortic root motion in non-ischemic dilated
Matthias Aurich1, Matthias Niemers2, Patrick Fuchs2
1Department of Internal Medicine III, Cardiology, Angiology and Pneumology, University of Heidelberg, Heidelberg, Germany. matthias.aurich@med.uni-heidelberg.de.
Insights
Systolic aortic root motion (SARM) is a novel measure of left ventricular longitudinal function. Reduced SARM predicts adverse outcomes in dilated cardiomyopathy patients and correlates with global longitudinal strain.
Area of Science:
- Cardiology
- Echocardiography
- Cardiac Imaging
Background:
- Aortic root motion recordings pioneered functional cardiac imaging.
- The precise mechanism of aortic root motion is not fully understood.
- Systolic aortic root motion (SARM) is hypothesized to reflect left ventricular longitudinal function (LV-LF).
Purpose of the Study:
- To investigate the relationship between SARM and LV-LF.
- To assess the prognostic value of SARM in patients with dilated cardiomyopathy.
- To explore SARM as an alternative echocardiographic parameter for LV-LF assessment.
Main Methods:
- Prospective study including 180 patients with dilated cardiomyopathy and 180 healthy controls.
- Measurement of SARM using echocardiography.
- Median follow-up of 38 months for cardiovascular events.
Main Results:
- SARM was significantly lower in dilated cardiomyopathy patients compared to controls (9±3 mm vs. 12±2 mm, p<0.001).
- Reduced SARM was associated with cardiovascular events and predicted adverse outcomes (HR 0.74, p<0.001).
- SARM showed a strong correlation with global longitudinal strain (r=0.75, p<0.001).
Conclusions:
- SARM is a valuable echocardiographic parameter for assessing LV-LF.
- Reduced SARM is an independent predictor of adverse outcomes in dilated cardiomyopathy.
- SARM may serve as an alternative to global longitudinal strain when apical views are unavailable.
Abstract:
Recordings of aortic root movement represent one of the first accomplishments of ultrasound in medicine and mark the beginning of functional cardiac imaging. However, the underlying mechanism is not completely understood. Since the aortic root is directly connected to the cardiac skeleton we hypothesize, that the amplitude of systolic aortic root motion (SARM) may be mainly caused by displacement of the cardiac base towards the apex and might therefore be used as measure of left ventricular longitudinal function (LV-LF). One hundred and eighty patients with dilated cardiomyopathy and 180 healthy controls were prospectively included into this study. SARM was lower in patients compared to controls (9 ± 3 mm vs. 12 ± 2 mm, p < 0.001) and lowest in patients with cardiovascular events (9 ± 3 mm vs. 7 ± 3 mm, p < 0.001). During a median follow-up time of 38 months, the combined end-point of cardiovascular death or hospitalization for heart failure was reached by 25 patients (13.9%). Reduced SARM had significant prognostic impact on outcome (hazard ratio 0.74, 95% confidence interval 0.63-0.88, p < 0.001) and remained an independent predictor in the multivariate analysis. Compared to parameters with potential influence on its mechanism, SARM correlated best (r = 0.75, p < 0.001) with global longitudinal strain (GLS). SARM may therefore represent an alternative echocardiographic parameter for the assessment of LV-LF, particularly when GLS is not feasible or apical views are not available.
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