Cardiac output derived from arterial pressure waveform

Jochen Mayer1, Stefan Suttner

  • 1Department of Anesthesiology and Intensive Care Medicine, Klinikum Ludwigshafen, Ludwigshafen, Germany. j-mayer@gmx.de

Insights

Arterial pressure waveform-based cardiac output (CO) devices offer less-invasive hemodynamic monitoring for surgical and ICU patients. While some devices show promise, further research is needed to confirm their ability to guide goal-directed therapy.

Area of Science:

  • Cardiovascular Physiology
  • Critical Care Medicine
  • Anesthesiology

Background:

  • Hemodynamic monitoring is crucial for managing surgical and critically ill patients.
  • Established methods like pulmonary artery thermodilution have limitations.
  • Arterial access enables less-invasive cardiac output (CO) monitoring via pressure waveforms.

Purpose of the Study:

  • To review the growing importance and application of arterial pressure waveform-based CO devices.
  • To assess the accuracy and evolving validation of these less-invasive CO monitoring techniques.
  • To discuss the potential of these methods in guiding goal-directed therapy.

Main Methods:

  • Review of recent studies on arterial pressure waveform-based CO devices.
  • Analysis of comparative CO study methodologies.
  • Evaluation of validation data for devices like PiCCO, LiDCO, FloTrac/Vigileo, and PRAM.

Main Results:

  • Numerous studies have emerged, assessing the accuracy of various commercial CO devices.
  • Comparative study methods are under scrutiny.
  • Established devices (PiCCO, LiDCO) show mixed validation results; FloTrac/Vigileo improved with software updates; PRAM requires further evaluation.

Conclusions:

  • Arterial pressure waveform-based devices offer valuable hemodynamic parameters, despite differences in invasiveness and calibration.
  • Evolving validation data suggests potential for enhanced patient management.
  • Further investigation is necessary to confirm their role in guiding goal-directed therapy.
Abstract

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