Prospective, observational, monocentric study to assess the physiological effects of dexmedetomidine and remifentanil in spontaneously breathing patients with acute hypoxemic respiratory failure receiving high-flow nasal oxygen.
Sedation in spontaneously breathing hypoxemic patients represents a critical physiological trade-off between lung protection and maintenance of adequate ventilation. While spontaneous breathing is generally encouraged to preserve diaphragm function and avoid invasive ventilation, excessive respiratory drive may promote patient self-inflicted lung injury (P-SILI) through increased inspiratory effort, elevated transpulmonary pressure swings, pendelluft phenomena, and regional stress amplification. Conversely, excessive sedation may suppress respiratory drive, resulting in hypoventilation, impaired gas exchange, and diaphragm disuse. Sedation therefore behaves as a double-edged sword, requiring careful titration to balance lung protection and adequate ventilation. Despite the widespread use of dexmedetomidine and remifentanil in this setting, limited information is available regarding their dose-dependent physiological effects on inspiratory effort, transpulmonary pressure, regional ventilation distribution, expiratory muscle recruitment, and lung stress. Current clinical practice relies mainly on symptom control (dyspnea, agitation, tachypnea) without direct assessment of the mechanical and regional effects of sedation on the injured lung; consequently, sedation strategies remain largely empirical and poorly standardized. The study aims to characterize the effects of sedation administered through Target-Controlled Infusion (TCI) on respiratory mechanics and regional lung behavior in spontaneously breathing patients receiving high-flow nasal oxygen. By integrating esophageal pressure monitoring and electrical impedance tomography, the effects of increasing effect-site concentrations of dexmedetomidine or remifentanil on inspiratory effort and its regional consequences will be investigated.
Study Type
OBSERVATIONAL
Enrollment
40
Fondazione Policlinico Universitario A.Gemelli IRCCS
Roma, RM, Italy
Inspiratory effort, expressed in cmH2O
Negative deflection in esophageal pressure during inspiration
Time frame: During procedure
Dyspnea
Defined according to visual analog scale of dyspnea (0-10, where 10 represents worst perceivable dyspnea)
Time frame: During procedure
Discomfort
Defined according to visual analog scale of discomfort (0-10, where 10 represents worst perceivable discomfort).
Time frame: During procedure
PaO2/FiO2 ratio
Change in arterial Pa/FiO2 (in mmHg)
Time frame: During procedure
Respiratory rate
Change in respiratory rate (breaths/minute)
Time frame: During procedure
Recuitment of expiratory muscles, expressed in cmH2O of gastric pressure
Expiratory increases in gastric pressure
Time frame: During procedure
Tidal volume distribution
Tidal volume distribution in the different lung regions (ventral-midventral-middorsal-dorsal), assessed with electrical impedance tomography
Time frame: During procedure
End-expiratory lung volume
Global impedance-derived end-expiratory lung volume (EELI), measured with electrical impedance tomography
Time frame: During procedure
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Regional End-expiratory lung volume
Regional (ventral-midventral-middorsal-dorsal) impedance-derived end-expiratory lung volume (EELI), measured with electrical impedance tomography
Time frame: During procedure
Dynamic transpulmonary driving pressure
Tidal change in transpulmonary pressure assessed with esophageal catether
Time frame: During procedure
Global impedance-derived lung dynamic strain
Change in impedance due to tidal volume / end expiratory lung impedance, both measured with electrical impedance tomography
Time frame: During procedure
Regional impedance-derived lung dynamic strain
Change in impedance due to tidal volume / end expiratory lung impedance in the four regions of the lungs (ventral, mid-ventral, mid-dorsal, dorsal), measured with electrical impedance tomography
Time frame: During procedure
Pendelluft
Occurrence of intra-tidal shift of gas within different lung regions at beginning of inspiration
Time frame: During procedure
Work of breathing
Esophageal pressure simplified pressure time product per minute
Time frame: During procedure