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June 1, 2001Hypertension71 citationsOpen Access

A Comparison Between Systolic and Diastolic Pulse Contour Analysis in the Evaluation of Arterial Stiffness

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ERE. RietzschelEBEva BoeykensMBMarc De Buyzere

Structured PICO

P
Population
100 subjects, free from atherothrombotic disease, aged 19 to 77 years, with a wide blood pressure range (97 to 186/52 to 104 mm Hg).
I
Intervention
Diastolic pulse contour analysis using a modified Windkessel model to derive large and small artery elasticity indices (C1 and C2)
C
Comparator
Systolic pulse contour analysis using a validated transfer function to derive augmentation index (AIx)
O
Outcome
Correlation between small artery elasticity index (C2) and augmentation index (AIx)surrogate

The small artery elasticity index (C2) correlates inversely with the augmentation index (AIx), suggesting it reflects arterial wave reflectance, but it suffers from higher measurement variability.

Limitations

  • C2 showed markedly increased variability with the devices used

Abstract

Several methodologically independent measures of arterial stiffness derived from either the systolic or diastolic segments of the arterial pulse have been proposed. The exact nature of the large and small artery elasticity indices (C1 and C2, respectively) derived from diastolic pulse contour analysis remains largely unexplored, although C2 has controversially been termed to be "oscillatory" and "reflective." We investigated the relation between C2 and, respectively, a prototype of arterial reflectivity (ie, the augmentation index, AIx) and a covariate of arterial reflectivity (body height). A validated transfer function is used to transform a tonometrically obtained radial pressure wave into an ascending aortic pressure wave, from which AIx is derived using systolic pulse contour analysis. Diastolic pulse contour analysis using a modified Windkessel model is used to derive C1 and C2. One hundred subjects, who were free from atherothrombotic disease and 19 to 77 years of age, with a wide pressure range (97 to 186/52 to 104 mm Hg) were studied. Mean values of C1, C2, AIx, and body height were, respectively, 13.8+/-4.3 mL/mm Hgx10, 5.9+/-3.1 mL/mm Hgx100, 128.5+/-24.9%, and 169+/-9 cm. Coefficients of variation were 32.8% for C1, 33.3% for C2, and 6.7% for AIx. C2 was significantly and inversely correlated to AIx (r=-0.707, P<0.001). Both AIx and C2 were correlated to body height (r=-0.487, P<0.001, and r=0.514, P<0.001). In conclusion, the results of this study provide the first clinical evidence that validates a probable biophysical equivalent of the C2 element of a third-order, 4-element modified Windkessel model. We suggest that C2 is, at least in part, a measure of arterial wave reflectance. However, although short-term reproducibility of AIx is excellent, C2 showed markedly increased variability with the devices used.

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Cite This Study

Rietzschel et al. (2001) studied this question.

synapsesocial.com/papers/6a72c26e5d37378ac1df674bhttps://doi.org/10.1161/01.hyp.37.6.e15
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