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Possible link between large artery stiffness and coronary flow velocity reserve
M Saito1, H Okayama, K Nishimura
1Division of Cardiology, Department of Integrated Medicine and Informatics, Ehime University Graduate School of Medicine, Shitsukawa, Toon, Ehime, 791-0295 Japan.
Insights
Increased large artery stiffness is linked to reduced coronary flow velocity reserve (CFVR). This finding may explain higher cardiac event rates in individuals with stiffer arteries.
Area of Science:
- Cardiovascular Physiology
- Arterial Biomechanics
- Clinical Cardiology
Background:
- Large artery stiffness predicts cardiovascular events and is linked to reduced coronary blood flow.
- Previous studies lacked clinical data on the relationship between large artery stiffness and coronary microvascular function.
Purpose of the Study:
- To investigate the association between large artery stiffness and coronary flow velocity reserve (CFVR) in a clinical setting.
Main Methods:
- 102 subjects without cardiovascular disease underwent measurements of brachial-ankle pulse wave velocity (baPWV) and carotid augmentation index (AIx).
- Transthoracic echocardiography assessed coronary flow velocity, with CFVR calculated during adenosine triphosphate-induced hyperemia.
- Correlations between arterial stiffness indices and CFVR were analyzed.
Main Results:
- Lower CFVR (< 2.5) was associated with significantly higher baPWV, AIx, and pulse pressure compared to normal CFVR.
- Multivariate analysis identified AIx and pulse pressure as independent predictors of reduced CFVR.
Conclusions:
- Large artery stiffening is associated with diminished coronary microvascular function, as indicated by reduced CFVR.
- This link may contribute to the increased cardiac event rates observed in individuals with arterial stiffening.
Background:
Population studies have shown that increased large artery stiffness is an independent predictor of cardiovascular events. Experimental studies have shown that a stiff aorta is associated with decreased coronary blood flow. However, a link between large artery stiffness and coronary microvascular function in the clinical setting has not been demonstrated previously.
Objective:
To evaluate the relationship between large artery stiffness and coronary flow velocity reserve (CFVR).
Patients And Methods:
102 consecutive subjects (mean (SD) age 62 (10) years) without coronary and peripheral arterial disease were enrolled in the study. After 15 minutes' rest, measurements were obtained of brachial-ankle pulse wave velocity (baPWV), augmentation index (AIx) from a carotid pulse tracing, and transthoracic echocardiographic measures, including coronary flow velocity in the left anterior descending coronary artery. In addition, coronary flow velocity during hyperaemia was measured during an intravenous infusion of adenosine triphosphate. CFVR was defined as the ratio of hyperaemic to basal coronary velocity.
Results:
Subjects with decreased CFVR (< 2.5; n = 40) had significantly higher baPWV (1848 (369) cm/s vs 1548 (333) cm/s; p<0.001), greater AIx (25.3 (11.0)% vs 16.3 (20.0)%; p = 0.01) and greater pulse pressure (PP) (64 (13) mm Hg vs 54 (13) mm Hg; p<0.001) than those with normal CFVR (> or = 2.5; n = 62). Multivariate analysis showed that AIx and PP were independent predictors of CFVR (r = -0.32, p<0.001 and -0.25, p = 0.02, respectively).
Conclusions:
The data suggest that large artery stiffening is linked to a reduction of CFVR, which may partially explain the higher cardiac event rate in patients with increased large artery stiffness.
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