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March 11, 2016AJP Heart and Circulatory Physiology53 citationsOpen Access

The influence of acute unloading on left ventricular strain and strain rate by speckle tracking echocardiography in a porcine model

GDGeir DahleLSLodve StangelandCMChristian Arvei Moen

Key Result

Acute dynamic ventricular unloading significantly affected both strain and strain rate (P<0.001), but strain rate was more robust to unloading and better predicted preload-independent contractility.

Structured PICO

Does acute dynamic unloading affect left ventricular strain and strain rate measured by speckle tracking echocardiography in a porcine model?

P
Population
Porcine model investigating the influence of acute dynamic preload reductions on left ventricular strain and strain rate.
I
Intervention
Acute dynamic reductions of end-diastolic volume (acute unloading) during three different myocardial inotropic states
O
Outcome
Left ventricular strain and strain rate (longitudinal, circumferential, and radial) and their relation to preload recruitable stroke work (PRSW) and peak positive first derivative of left ventricular pressure (LV-dP/dtmax)surrogate

Speckle tracking echocardiography-derived strain rate is more robust to dynamic ventricular unloading than strain and serves as a good predictor of preload-independent inotropic markers.

Main Result

p-value: p=<0.001

Abstract

Noninvasive measurements of myocardial strain and strain rate by speckle tracking echocardiography correlate to cardiac contractile state but also to load, which may weaken their value as indices of inotropy. In a porcine model, we investigated the influence of acute dynamic preload reductions on left ventricular strain and strain rate and their relation to the pressure-conductance catheter-derived preload recruitable stroke work (PRSW) and peak positive first derivative of left ventricular pressure (LV-dP/dtmax). Speckle tracking strain and strain rate in the longitudinal, circumferential, and radial directions were measured during acute dynamic reductions of end-diastolic volume during three different myocardial inotropic states. Both strain and strain rate were sensitive to unloading of the left ventricle (P < 0.001), but the load dependency for strain rate was modest compared with strain. Changes in longitudinal and circumferential strain correlated more strongly to changes in end-diastolic volume (r = -0.86 and r = -0.72) than did radial strain (r = 0.35). Longitudinal, circumferential, and radial strain significantly correlated with LV-dP/dtmax (r = -0.53, r = -0.46, and r = 0.86), whereas only radial strain correlated with PRSW (r = 0.55). Strain rate in the longitudinal, circumferential and radial direction significantly correlated with both PRSW (r = -0.64, r = -0.58, and r = 0.74) and LV-dP/dtmax (r = -0.95, r = -0.70, and r = 0.85). In conclusion, the speckle tracking echocardiography-derived strain rate is more robust to dynamic ventricular unloading than strain. Longitudinal and circumferential strain could not predict load-independent contractility. Strain rates, and especially in the radial direction, are good predictors of preload-independent inotropic markers derived from conductance catheter.

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Cite This Study

Dahle et al. (2016) studied Ventricular unloading. Acute dynamic preload reductions was evaluated on Left ventricular strain and strain rate (p=<0.001). Acute dynamic ventricular unloading significantly affected both strain and strain rate (P<0.001), but strain rate was more robust to unloading and better predicted preload-independent contractility.

synapsesocial.com/papers/6a208f796832c8bccb4d1c71https://doi.org/10.1152/ajpheart.00947.2015
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