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Measuring the Carotid to Femoral Pulse Wave Velocity (Cf-PWV) to Evaluate Arterial Stiffness
Published on: May 3, 2018
Non-invasive assessment of arterial stiffness by pulse-wave velocity correlates with endothelial dysfunction
1Department of Non-Invasive Cardiology, MGM New Bombay Hospital, Navi Mumbai. umjadhav@vsnl.net
Insights
Increased arterial stiffness, measured by pulse-wave velocity, strongly correlates with impaired endothelial function. This suggests pulse-wave velocity and flow-mediated dilation are valuable for assessing pre-clinical atherosclerosis.
Area of Science:
- Cardiovascular physiology
- Vascular biology
- Diagnostic imaging
Background:
- Pulse-wave velocity (PWV) quantifies arterial stiffness and is linked to atherosclerosis.
- Endothelial dysfunction is an early indicator of atherogenesis.
- Assessing arterial stiffness and endothelial function non-invasively is crucial for early atherosclerosis detection.
Purpose of the Study:
- To determine the correlation between non-invasively measured arterial stiffness (using PWV) and endothelial dysfunction.
- To investigate the association of PWV with endothelial function in individuals at high risk for atherosclerosis.
Main Methods:
- 102 high-risk subjects (hypertension, diabetes, dyslipidemia) were studied.
- Arterial stiffness was assessed using pulse-wave velocity (PWV) measured by the VP-1000 device.
- Endothelial function was evaluated via flow-mediated dilation (FMD) of the brachial artery using ultrasound.
Main Results:
- Mean brachial artery PWV was approximately 1697 cm/s.
- Mean FMD was 3.6 ± 8.4%.
- Higher PWV and arterial stiffness values showed a significant negative correlation with brachial artery FMD (e.g., r = -0.40, p < 0.0001 for higher PWV).
Conclusions:
- Elevated pulse-wave velocity, indicating increased arterial stiffness, is strongly correlated with reduced brachial artery flow-mediated dilation.
- Non-invasive methods for measuring PWV and FMD are recommended for clinical assessment of pre-clinical atherosclerosis.
Background:
Pulse-wave velocity is the speed of the blood pressure wave to travel a given distance between two sites of the arterial system and is determined by the elasticity, wall thickness and blood density. Pulse-wave velocity correlates well with arterial distensibility and stiffness and is a useful non-invasive index to assess arteriosclerosis. Arterial endothelial dysfunction is one of the key early events in atherogenesis, preceding structural atherosclerotic changes. This study sought to establish the correlation of non-invasive estimation of arterial wall stiffness by pulse-wave velocity and its association with endothelial dysfunction in subjects at higher risk for atherosclerosis.
Methods And Results:
A total of 102 subjects (60 males and 42 females, mean age 51 years), including those with hypertension (n = 39), type 2 diabetes mellitus (n = 26), concomitant type 2 diabetes mellitus and hypertension (n = 29) and primary dyslipidemia without diabetes mellitus and hypertension (n = 8). Pulse-wave velocity was measured by the Vascular Profiler 1000 (VP-1000) waveform analysis and vascular evaluation system, an automated, non-invasive, screening device. Endothelial function was assessed by flow-mediated dilation of the brachial artery. The brachial-artery diameter was measured on B-mode ultrasound images, with the use of a 7.0 MHz linear-array transducer. Mean brachial artery pulse-wave velocity on the right extremity was 1699 cm/s and on the left 1694 cm/s. Mean flow-mediated dilation in the study subjects was 3.6 +/- 8.4%. Mean brachial artery pulse-wave velocity in the right and left extremities and the higher value of brachial artery pulse-wave velocity of the two extremities showed a negative and significant correlation with flow-mediated dilation of the brachial artery (correlation coefficient r = -0.32, p = 0.001; r = -0.40 p < 0.0001; r = -0.37, p = 0.001, respectively). Mean heart-brachial pulse-wave velocity also showed a negative and significant correlation with flow-mediated dilation of the brachial artery (r = -0.23, p = 0.022). Mean arterial stiffness was 36.2 +/- 22%. Arterial stiffness in the right extremity and the higher value of the two extremities showed a negative and significant correlation with flow-mediated dilation of the brachial artery (correlation coefficient r = -0.31, p = 0.002; r = -0.32, p = 0.001, respectively).
Conclusions:
Increased values of pulse-wave velocity reflecting upon arterial stiffness show an excellent correlation with reduced values of brachial artery flow-mediated dilation. We propose that the non-invasive modalities of estimation of the pulse-wave velocity and endothelial function estimation by flow-mediated dilation of brachial artery be used in clinical practice in assessment of pre-clinical atherosclerosis.
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