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Cardiac output derived from arterial pressure waveform
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.
Purpose Of Review:
Cardiac output (CO) and other flow-based hemodynamic variables have become increasingly important to guide treatment of patients undergoing major surgery with expected fluid shifts in the operating room as well as critically ill ICU patients. Established techniques such as pulmonary artery thermodilution, however, might not be justified in all of these patients. As arterial access is commonly available, less-invasive arterial pressure waveform-based CO devices are becoming more and more popular.
Recent Findings:
Many studies dealing with arterial pressure waveform-based CO have emerged in recent years providing additional information with regard to accuracy of the different commercially available devices. Furthermore, methods of comparative CO studies have been recently brought into question.
Summary:
Although there are differences in invasiveness and the need for external calibration, all available devices provide parameters for enhanced hemodynamic monitoring. Initial validation studies of the more established techniques such as the pulse contour cardiac output (PiCCO) or LiDCO were recently met with less enthusiasm, whereas the initially disappointing validation studies of the FloTrac/Vigileo device had encouraging results after software updates. The pressure recording analytical method (PRAM) technique has not so far been sufficiently evaluated to be able to come to a conclusion. Further investigation is required with regard to the ability of the arterial pressure waveform-based methods to guide goal-directed therapy.
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