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August 1, 1992Circulation834 citationsOpen Access

Effective arterial elastance as index of arterial vascular load in humans.

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RKRaymond P. KellyCTChih-Tai TingTYT M Yang

Key Points

  • To determine whether effective arterial elastance, calculated as ventricular end-systolic pressure divided by stroke volume, provides an accurate measure of arterial load in normotensive and hypertensive individuals.
  • Simultaneously measured ventricular pressure-volume loops and invasive aortic pressure and flow in 10 subjects (4 young normotensive and 6 older hypertensive).

Structured PICO

Does the simple ratio of ventricular end-systolic pressure to stroke volume (Ea(PV)) provide a valid measure of arterial load compared to complex impedance-derived measures (Ea(Z)) in humans?

P
Population
10 subjects (four young normotensive and six older hypertensive)
I
Intervention
Measurement of effective arterial elastance as the ratio of ventricular end-systolic pressure to stroke volume [Ea(PV)]
C
Comparator
Measurement of effective arterial elastance derived from aortic input impedance and arterial compliance data using a three-element Windkessel model [Ea(Z)]
O
Outcome
Agreement between Ea(PV) and Ea(Z)surrogate

The simple ratio of ventricular end-systolic pressure to stroke volume provides a valid and convenient measure of arterial load in humans, accurately reflecting the effects of aging and hypertension.

Abstract

BACKGROUND: This study tested whether the simple ratio of ventricular end-systolic pressure to stroke volume, known as the effective arterial elastance (Ea), provides a valid measure of arterial load in humans with normal and aged hypertensive vasculatures. METHODS AND RESULTS: Ventricular pressure-volume and invasive aortic pressure and flow were simultaneously determined in 10 subjects (four young normotensive and six older hypertensive). Measurements were obtained at rest, during mechanically reduced preload, and after pharmacological interventions. Two measures of arterial load were compared: One was derived from aortic input impedance and arterial compliance data using an algebraic expression based on a three-element Windkessel model of the arterial system Ea(Z), and the other was more simply measured as the ratio of ventricular end-systolic pressure to stroke volume Ea(PV). Although derived from completely different data sources and despite the simplifying assumptions of Ea(PV), both Ea(Z) and Ea(PV) were virtually identical over a broad range of altered conditions: Ea(PV) = 0.97.Ea(Z) + 0.17; n = 33, r2 = 0.98, SEE = 0.09, p less than 0.0001. Whereas Ea(PV) also correlated with mean arterial resistance, it exceeded resistance by as much as 25% in older hypertensive subjects (because of reduced compliance and wave reflections), which better indexed the arterial load effects on the ventricle. Simple methods to estimate Ea (PV) from routine arterial pressures were tested and validated. CONCLUSIONS: Ea(PV) provides a convenient, useful method to assess arterial load and its impact on the human ventricle. These results highlight effects of increased pulsatile load caused by aging or hypertension on the pressure-volume loop and indicate that this load and its effects on cardiac performance are often underestimated by mean arterial resistance but are better accounted for by Ea.

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Cite This Study

Kelly et al. (1992) studied this question.

synapsesocial.com/papers/6a0b99234607a9c6e995cb7ahttps://doi.org/10.1161/01.cir.86.2.513
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