In small animals, carbon dioxide monitoring is either limited by the need to take blood samples for gas analysis, or it interferes with respiratory efficiency and lung mechanics analysis. We introduced a novel approach for continuous monitoring of CO2 in the expiratory limb of the breathing circuit. The relevance of the method is assessed by CO2 measurements at different respiratory settings. Rats were ventilated with a tidal volume (VT) of 8 mL kg-1. Respiratory rates were adjusted to achieve arterial CO2 partial pressure (PaCO2P{₀₂{{O₂}}}) between 35 and 45 mmHg. We measured partial pressure of CO2 in the expiratory limb of the breathing circuit (exCO2). exCO2 values were compared to PaCO2P{₀₂{{O₂}}} from blood gas analysis. The agreement between the two measurements was assessed by correlation and Bland-Altman analysis. The validity of the novel approach was established through additional experimental runs with VT of 7 or 6 mL kg-1, where the respiratory rate was set in accordance to exCO2. Measurements of exCO2 reflected PaCO2P{₀₂{{O₂}}} with high correlation (R2 = 0. 8658). Bland-Altman analysis showed high agreement between the two measurements. Respiratory rate setting guided by exCO2 (39 ± 2 or 40 ± 2 mmHg during ventilation with VT of 7 or 6 mL kg-1, respectively) was appropriate to maintain PaCO2P{₀₂{{O₂}}} (41 ± 2 mmHg for both VT). Measurement of exCO2 provides a robust estimate of PaCO2P{₀₂{{O₂}}} in anaesthetized small animals during mechanical ventilation. Continuous monitoring of CO2 in the exhaled breath could be used to guide mechanical ventilation settings.
Wenzel et al. (Sun,) studied this question.