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[Comparison of pulse pressure variation, stroke volume variation, and plethysmographic variability index in pediatric
Insights
Pulse pressure variation (PPV) and stroke volume variation (SVV) closely correlate in pediatric craniotomy patients, especially younger children. Plethysmographic variability index (PVI) showed poor agreement with both PPV and SVV.
Area of Science:
- Anesthesiology
- Pediatric Surgery
- Critical Care Medicine
Background:
- Intraoperative fluid management is crucial in pediatric surgery.
- Dynamic preload parameters guide fluid administration.
- Comparing the reliability of different dynamic parameters is essential.
Purpose of the Study:
- To compare intraoperative dynamic preload parameters: pulse pressure variation (PPV), stroke volume variation (SVV), and plethysmographic variability index (PVI).
- To assess the agreement and trending ability of these parameters in children undergoing craniotomy for epilepsy surgery.
Main Methods:
- 30 children (0-14 years) undergoing craniotomy for epileptogenic lesion excision were studied.
- PPV, SVV (Flotrac/Vigileo), and PVI (Masimo Radical-7) were measured simultaneously.
- Bland-Altman analysis and 4-quadrant/polar plots assessed agreement and trending.
Main Results:
- PPV and SVV showed good agreement (88.6% concordance), particularly in children <3 years (92.7%).
- Both PPV and SVV demonstrated poor agreement with PVI (50.4% and 50.1% concordance, respectively).
- Arterial waveform-based parameters (PPV, SVV) showed high concordance with each other (86.6%) but not with PVI.
Conclusions:
- PPV can serve as a surrogate for SVV in pediatric craniotomy, especially in younger children.
- Arterial waveform-based parameters (PPV, SVV) are not interchangeable with PVI.
- Further research is warranted to combine PVI and PPV for enhanced cardiac preload monitoring.
Objective:
To compare well-known preload dynamic parameters intraoperatively including stroke volume variation (SVV), pulse pressure variation (PPV), and plethysmographic variability index (PVI) in children who underwent craniotomy for epileptogenic lesion excision.
Methods:
A total of 30 children aged 0 to 14 years undergoing craniotomy for intracranial epileptogenic lesion excision were enrolled. During surgery, we measured PPV, SVV (measured by the Flotrac/Vigileo device), and PVI (measured by the Masimo Radical-7 monitor) simultaneously and continuously. Preload dynamic parameter measurements were collected at predefined steps: after induction of anesthesia, during opening the skull, intraoperative electroencephalogram monitoring, excision of epileptogenic lesion, skull closure, at the end of the operation. After exclusion of outliers, agreement among SVV, PPV, and PVI was assessed using repeated measures of Bland-Altman approach. The 4-quadrant and polar plot techniques were used to assess the trending ability among the changes in the three parameters.
Results:
The mean SVV, PPV, and PVI were 8%±2%, 10%±3%, and 15%±7%, respectively during surgery. We analyzed a total of 834 paired measurements (3 to 8 data sets for each phase per patient). Repeated measures Bland-Altman analysis identified a bias of -2.3 and 95% confidence intervals between -1.9 and -2.7 (95% limits of agreement between -6.0 and 1.5) between PPV and SVV, showing significant correlation at all periods. The bias between PPV and PVI was -5.0 with 95% limits of agreement between -20.5 and 10.5, and that between SVV and PVI was -7.5 with 95% limits of agreement between -22.7 and 7.8, both not showing significant correlation. Reflected by 4-quadrant plots, the con-cordance rates showing the trending ability between the changes in PPV and SVV, PPV and PVI, SVV and PVI were 88.6%, 50.4%, and 50.1%, respectively. The concordance rate between PPV and SVV was higher (92.7%) in children aged less than 3 years compared with those aged 3 and more than 3 years. The mean angular bias, radial limits of agreement, and angular concordance rate in the polar analysis were not clinically acceptable in the changes between arterial pressure waveform-based parameters and volume-based PVI (PPV vs. PVI: angular mean bias 8.4°, angular concordance rate 29.9%; SVV vs. PVI: angular mean bias 2.4°, angular concordance rate 29.1%). There was a high concordance between the two arterial pressure waveform-based parameters reflected by the polar plot (angular mean bias -0.22°, angular concordance rate 86.6%).
Conclusion:
PPV can be viewed as a surrogate for SVV, especially in children aged less than 3 years. The agreement between arterial pressure waveform-based preload parameters (PPV and SVV) and PVI is poor and these two should not be considered interchangeable. Attempt to combine PVI and PPV for improving the anesthesiologist's ability to monitor cardiac preload in major pediatric surgery is warranted.
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