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September 19, 2005Circulation85 citationsOpen Access

Doppler-Derived Ejection Intraventricular Pressure Gradients Provide a Reliable Assessment of Left Ventricular Systolic Chamber Function

RYRaquel YottiJBJavier BermejoMDManuel Desco

Key Points

  • To assess whether noninvasive Doppler-derived ejection intraventricular pressure differences (EIVPD) provide accurate, load-independent indices of left ventricular systolic chamber function.
  • Simultaneously acquired color Doppler M-mode images and invasive pressure-volume conductance signals in 9 minipigs during pharmacological challenges and acute ischemia.

Structured PICO

Does noninvasive Doppler-derived EIVPD correlate with invasive pressure-volume indices of left ventricular systolic function in minipigs?

P
Population
14 minipigs (9 undergoing pharmacological interventions and acute ischemia, 5 undergoing load manipulation)
I
Intervention
Noninvasive measurement of ejection intraventricular pressure difference (EIVPD) using color Doppler M-mode (CDMM) images
C
Comparator
Invasive pressure-volume (conductance) signals
O
Outcome
Correlation of peak EIVPD with indices of systolic function based on the pressure-volume relationshipsurrogate

Doppler-derived ejection intraventricular pressure gradients provide a quantitative, reproducible, and relatively load-independent noninvasive index of global LV systolic function.

Abstract

BACKGROUND: Ejection intraventricular pressure gradients are caused by the systolic force developed by the left ventricle (LV). By postprocessing color Doppler M-mode (CDMM) images, we can measure noninvasively the ejection intraventricular pressure difference (EIVPD) between the LV apex and the outflow tract. This study was designed to assess the value of Doppler-derived EIVPDs as noninvasive indices of systolic chamber function. METHODS AND RESULTS: CDMM images and pressure-volume (conductance) signals were simultaneously acquired in 9 minipigs undergoing pharmacological interventions and acute ischemia. Inertial, convective, and total EIVPD curves were calculated from CDMM recordings. Peak EIVPD closely correlated with indices of systolic function based on the pressure-volume relationship: peak elastance (within-animal R=0.98; between-animals R=0.99), preload recruitable stroke work (within-animal R=0.81; between-animals R=0.86), and peak of the first derivative of pressure corrected for end-diastolic volume (within-animal R=0.88; between-animals R=0.91). The correlation of peak inertial EIVPD with these indices was also high (all R>0.75). Load dependence of EIVPDs was studied in another 5 animals in which consecutive beats obtained during load manipulation were analyzed. During caval occlusion (40% EDV reduction), dP/dtmax, ejection fraction, and stroke volume significantly changed, whereas peak EIVPD remained constant. Aortic occlusion (40% peak LV pressure increase) significantly modified dP/dtmax, ejection fraction, and stroke volume; a nearly significant trend toward decreasing peak EIVPD was observed (P=0.06), whereas inertial EIVPD was unchanged (P=0.6). EIVPD beat-to-beat and interobserver variabilities were 2+/-12% and 5+/-11%, respectively. CONCLUSIONS: Doppler-derived EIVPDs provide quantitative, reproducible, and relatively load-independent indices of global systolic chamber function that correlate closely with currently available reference methods.

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Cite This Study

Yotti et al. (2005) studied this question.

synapsesocial.com/papers/6a83a4d1a3cef8348e9967b9https://doi.org/10.1161/circulationaha.104.485128
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