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Optimization of inspiratory work in periodic breathing in infants
M Levine1, M K Hathorn, J P Cleave
1Department of Medical Electronics, St. Bartholomews & the Royal London Hospital School of Medicine and Dentistry, Queen Mary & Westfield College, University of London, United Kingdom.
Insights
Periodic breathing in infants involves cycles of breaths and pauses. This study reveals infant breathing mechanics minimize work, suggesting an optimal control process during these cycles.
Area of Science:
- Physiology
- Infant Respiratory Mechanics
Background:
- Periodic breathing is characterized by cyclical breathing patterns in infants.
- Understanding the mechanics of periodic breathing is crucial for infant respiratory health.
Purpose of the Study:
- To analyze the mechanics of periodic breathing in human infants.
- To investigate the work of breathing during periodic breathing cycles.
- To explore potential control mechanisms underlying periodic breathing.
Main Methods:
- Calibrated recordings of tidal volume and esophageal pressure in newborns.
- Analysis of inspiratory timing, volumes, and work per breath cycle.
- Application of a lung mechanics model to calculate inspiratory parameters.
- Derivation of a theoretical formula for external work during inspiration bursts.
Main Results:
- Calculated lung mechanics parameters varied between breaths.
- A theoretical minimum work was identified for periodic breathing cycles.
- Observed external work strongly correlated with the theoretical minimum work.
- A pattern of work overshoot and undershoot suggested an optimal control process.
Conclusions:
- Infant periodic breathing mechanics appear to minimize the work of breathing.
- A control process likely operates to optimize work during breathing cycles.
- Findings provide insights into the physiological regulation of infant respiration.
Abstract:
In periodic breathing, there are repeated cycles of bursts of breaths separated by pauses several seconds long. We consider the mechanics of periodic breathing in human infants using calibrated traces of tidal volume and esophageal pressure recorded during the first few days after delivery. Each cycle of periodic breathing was analyzed in terms of the inspiratory time and beginning and end inspiratory volumes for each breath, the number of breaths in the cycle, and the total observed inspiratory work. A simple model was used to characterize the mechanics of the lung during inspiration, and the recordings were used to calculate the parameters of this model. These varied from breath to breath. A theoretical formula is derived for the sum of external work performed during inspiration for each burst. It is shown mathematically that there exists a local minimum in the calculated work as the values of the individual tidal volumes in this formula are allowed to vary, with the constraint that the sum of the ventilation during the cycle is as measured. The measured values of inspiratory timing, the starting volume and pressure, and the mechanical parameters for each inspiration are also used. We show that during each cycle of periodic breathing, the total of the observed external work is highly correlated with this theoretical minimum work. In addition, during the cycle, there is a pattern of overshoot and subsequent undershoot in the work with respect to the theoretical optimum, which suggests a control process operating during the cycle to minimize the work.
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