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September 1, 1991Critical Care Medicine151 citations

Noninvasive optimization of left ventricular filling using esophageal Doppler

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MSMervyn SingerEBEd Bennett

Structured PICO

Can esophageal Doppler measurement of corrected flow time be used for noninvasive optimization of left ventricular filling compared to pulmonary arterial occlusion pressure in mechanically ventilated patients?

P
Population
43 mechanically ventilated patients in the ICU or undergoing cardiothoracic surgery with a pulmonary arterial catheter in situ
I
Intervention
Esophageal Doppler measurement of descending aortic blood flow (corrected flow time) during manipulation of left ventricular preload
C
Comparator
Pulmonary arterial occlusion pressure (PAOP) measured via pulmonary arterial catheter
O
Outcome
Changes in corrected flow time and PAOP in response to left ventricular preload alterationssurrogate

Esophageal Doppler measurement of aortic blood flow provides a rapid, noninvasive method for optimizing left ventricular filling in mechanically ventilated patients.

Abstract

OBJECTIVE: To confirm whether the descending aortic blood flow velocity waveform variable of flow time corrected for heart rate, measured using an esophageal Doppler transducer, can be used for noninvasive optimization of left ventricular (LV) filling. SETTING: ICU and operating theater. SUBJECTS: Forty-three mechanistically ventilated patients in the ICU or undergoing cardiothoracic surgery in whom a pulmonary arterial catheter was in situ. INTERVENTIONS: LV preload was a) increased from hypovolemic states (pulmonary arterial occlusion pressure PAOP less than 8 mm Hg) by fluid challenge, b) decreased from normovolemic states (PAOP 10 to 15 mm Hg) by either iv nitrates or intravascular fluid loss, and c) decreased from heart failure or fluid overload states (PAOP greater than 20 mm Hg) by iv nitrates. No other maneuver was performed concurrently. MEASUREMENTS AND MAIN RESULTS: Descending aortic blood flow was measured by an esophageal Doppler transducer. Corrected flow time was calculated by dividing systolic flow time by the square root of the cycle time. PAOP and corrected flow time increased after fluid challenges in hypovolemic states, and decreased when LV preload was decreased from normovolemic states. However, when preload was decreased from overload states, PAOP always decreased, but the corrected flow time usually increased before any subsequent decrease. The greatest value of corrected flow time corresponded with the maximal stroke volume seen. CONCLUSIONS: Esophageal Doppler measurement of aortic blood flow can be used for rapid, noninvasive optimization of LV filling in mechanically ventilated patients.

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Cite This Study

Singer et al. (1991) studied this question.

synapsesocial.com/papers/6a719fad2163a0a01bc5b0bchttps://doi.org/10.1097/00003246-199109000-00007
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Effects of alterations in left ventricular filling, contractility, and systemic vascular resistance on the ascending aortic blood velocity waveform of normal subjects1991 · 143 citations
  2. 2Mitral Doppler Indices Are Superior to Two-Dimensional Echocardiographic and Hemodynamic Variables in Predicting Responsiveness of Cardiac Output to a Rapid Intravenous Infusion of Colloid2002 · 32 citations
  3. 3Can the Extent of Change of the Left Ventricular Doppler Inflow Pattern During the Valsalva Maneuver Predict an Elevated Left Ventricular End‐Diastolic Pressure?1998 · 10 citations
  4. 4Echocardiographic assessment of left ventricular filling pressure compared to pulmonary artery catheter in mechanically ventilated patients: Systematic review and meta-analysis2026
  5. 5The transmitral pressure-flow velocity relation. Effect of abrupt preload reduction.1988 · 139 citations