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.
Abstract

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