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Predicted body weight relationships for protective ventilation - unisex proposals from pre-term through to adult
Dion C Martin1, Glenn N Richards2
1ResMed Science Center, ResMed Ltd, 1 Elizabeth Macarthur Drive, Bella Vista, 2153, Sydney, Australia. Dion.Martin@resmed.com.au.
Insights
Developing a unified formula for predicted body weight (PBW) is crucial for lung-protective ventilation across all ages. New models offer better accuracy for infants and adults, improving ventilation strategies.
Area of Science:
- Pediatric critical care medicine
- Mechanical ventilation
- Physiological modeling
Background:
- Lung-protective ventilation (LPV) reduces mortality in acute respiratory distress syndrome (ARDS) and is recommended for pediatric patients.
- Accurate prediction of lean body weight (PBW) from height is essential for LPV.
- Current ARDS Network (ARDN) PBW formulas are sex-specific for adults and do not apply to smaller body sizes.
Purpose of the Study:
- To investigate the feasibility of a unisex PBW formula applicable to all body sizes.
- To develop a PBW formula that maintains relevance to established adult LPV practices.
- To improve PBW prediction for pediatric and adult populations.
Main Methods:
- Utilized historical population-based growth charts as a reference for lean body weight from pre-term infants to adults.
- Employed traditional ARDN PBW formulas as the reference for current LPV practices.
- Developed and evaluated four alternate piecewise-linear PBW predictive formulas.
Main Results:
- ARDN PBW formulas overestimate weight compared to population medians, indicating no single formula fits both references perfectly.
- Four alternative PBW formulas were proposed, balancing LPV practice with improved accuracy across different body sizes.
- The 'PBWuf + MBW' model aligns the ARDSNet 'female' formula for adults and fits smaller statures accurately.
Conclusions:
- The 'PBWuf + MBW' model offers a practical compromise for LPV, simplifying practice and better reflecting adult lean body weight.
- This model accurately predicts PBW for smaller individuals, from pre-term infants to adults.
- The 'PBWmf + MBW' model maintains adult practice consistency while extending prediction to smaller statures.
Background:
The lung-protective ventilation bundle has been shown to reduce mortality in adult acute respiratory distress syndrome (ARDS). This concept has expanded to other areas of acute adult ventilation and is recommended for pediatric ventilation. A component of lung-protective ventilation relies on a prediction of lean body weight from height. The predicted body weight (PBW) relationship employed in the ARDS Network trial is considered valid only for adults, with a dedicated formula required for each sex. No agreed PBW formula applies to smaller body sizes. This analysis investigated whether it might be practical to derive a unisex PBW formula spanning all body sizes, while retaining relevance to established adult protective ventilation practice.
Methods:
Historic population-based growth charts were adopted as a reference for lean body weight, from pre-term infant through to adult median weight. The traditional ARDSNet PBW formulae acted as the reference for prevailing protective ventilation practice. Error limits for derived PBW models were relative to these references.
Results:
The ARDSNet PBW formulae typically predict weights heavier than the population median, therefore no single relationship could satisfy both references. Four alternate piecewise-linear lean body-weight predictive formulae were presented for consideration, each with different balance between the objectives.
Conclusions:
The 'PBWuf + MBW' model is proposed as an appropriate compromise between prevailing practice and simplification, while also better representing lean adult body-weight. This model applies the ARDSNet 'female' formula to both adult sexes, while providing a tight fit to median body weight at smaller statures down to pre-term. The 'PBWmf + MBW' model retains consistency with current practice over the adult range, while adding prediction for small statures.
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