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Regional distribution of chest wall displacements in infants during high-frequency ventilation
Emanuela Zannin1, Maria Luisa Ventura2, Giulia Dognini2
1Dipartimento di Elettronica, Informazione e Bioingegneria, Politecnico di Milano University , Milan , Italy.
Insights
High-frequency ventilation (HFV) in infants shows asynchronous chest wall movement that is frequency-dependent. However, this does not impact gas exchange when the carbon dioxide diffusion coefficient is constant.
Area of Science:
- Neonatal Physiology
- Respiratory Mechanics
- Pediatric Critical Care
Background:
- High-frequency ventilation (HFV) is crucial for neonates with respiratory distress.
- Ventilation distribution in infants during HFV is complex, varying with frequency.
- Understanding regional chest wall mechanics is key to optimizing HFV.
Purpose of the Study:
- To investigate the effect of different oscillatory frequencies on regional chest wall displacements in newborn infants.
- To determine if frequency-dependent chest wall motion impacts gas exchange efficiency during HFV.
- To analyze the asynchronous and nonhomogeneous ventilation patterns during HFV.
Main Methods:
- Studied 15 newborn infants undergoing HFV at frequencies of 5, 8, 10, 12, and 15 Hz.
- Used optoelectronic plethysmography to measure displacements of 24 passive markers on the chest wall.
- Analyzed marker amplitude, phase shift, and regional chest wall volume changes.
Main Results:
- Blood gases remained unaffected across all tested ventilation frequencies.
- Chest wall volume changes decreased significantly with increasing frequency (5 Hz to 15 Hz).
- The abdomen oscillated more than the ribcage, with a frequency-dependent phase lag and asynchronous regional movements.
Conclusions:
- Regional chest wall expansion differences during HFV do not affect gas exchange when the carbon dioxide diffusion coefficient is constant.
- Higher frequencies reduce chest wall displacements, potentially mitigating overdistension without compromising gas exchange.
- No specific frequency or tidal volume combination optimizes gas exchange under constant CO2 diffusion conditions.
Abstract:
The distribution of ventilation during high-frequency ventilation (HFV) is asynchronous, nonhomogeneous, and frequency dependent. We hypothesized that differences in the regional distribution of ventilation at different oscillatory frequencies may affect gas exchange efficiency. We studied 15 newborn infants with a median gestational age of 28.9 (26.4-30.3) wk and body weight of 1.0 (0.8-1.4) kg. Five ventilation frequencies (5, 8, 10, 12, and 15 Hz) were tested, keeping carbon dioxide diffusion coefficient constant. The displacements of 24 passive markers placed on the infant's chest wall were measured by optoelectronic plethysmography. We evaluated the amplitude and phase shift of displacements of single markers placed along the midline and the regional displacements of the chest wall surface. Blood gases were unaffected by frequency. Chest wall volume changes decreased from 1.6 (0.4) ml/kg at 5 Hz to 0.7 ml/kg at 15 Hz. At all frequencies, the abdomen (AB) oscillated more markedly than the ribcage (RC). The mean (SD) AB/RC ratio was 1. 95 (0.7) at 5 Hz, increased to 2.1 (1.3) at 10 Hz, and then decreased to 1.1 (0.5) at 15 Hz ( P < 0.05 vs. 10 Hz). Volume changes in the AB lagged the RC and this phase shift increased with frequency. The AB oscillated more than the RC at all frequencies. Regional oscillations were highly inhomogeneous up to 10 Hz, and they became progressively more asynchronous with increasing frequency. When the carbon dioxide diffusion coefficient is held constant, such differences in regional chest wall expansion do not affect gas exchange. NEW & NOTEWORTHY We characterized the regional distribution of chest wall displacements in infants receiving high-frequency oscillatory ventilation at different frequencies. When carbon dioxide diffusion coefficient is held constant, there is no combination of frequency and tidal volume that optimizes gas exchange. The relative displacement between different chest wall compartments is not affected by frequency. However, at high frequencies, chest wall displacements are lower, with the potential to reduce total and regional overdistension without affecting gas exchange.
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