Ventilator-associated pneumonia (VAP) complicates the hospital course of up to 40% of mechanically ventilated patients and is associated with mortality rates approaching 30%, despite appropriate antibiotic therapy (ATB). Gram-negative bacteria account for approximately 60% of VAP episodes, with Pseudomonas aeruginosa (Pa) being one of the most common pathogens. Recurrent Pa-VAP occurs in 19-33% of cases outside the COVID-19 setting, whereas recurrence rates as high as 79% have been reported in patients with COVID-19, most often caused by the same pathogen and frequently occurring despite adequate antibiotic therapy. Several attempts have been made to improve pulmonary antibiotic exposure by combining intravenous therapy with aerosolized antibiotics delivered through conventional nebulizers. However, clinical results have been disappointing, largely because standard jet nebulizers deliver less than 10% of the nominal dose to the lungs owing to high residual volumes, drug deposition within the ventilator circuit and endotracheal tube, and loss through the expiratory limb. Even with more efficient vibrating mesh nebulizers, two recent randomized con-trolled trials failed to demonstrate any clinical benefit of adjunctive nebulized antibiotics in patients with Gram-negative VAP. Bacteriophages are bacteria-specific viruses that have emerged as a promising therapeutic alternative for difficult-to-treat bacterial infections. Their highly specific host range allows selective targeting of pathogenic bacteria while sparing the commensal microbiota and human cells, thereby minimizing toxicity and off-target effects. An increasing body of preclinical evidence and clinical case reports supports the safety and potential efficacy of anti-P. aeruginosa phage therapy. More recently, a porcine model of Pa-VAP demonstrated that high concentrations of bacteriophages can be efficiently delivered to the lungs by nebulization during mechanical ventilation, resulting in rapid control of the pulmonary infection. The use of phages as compassionate treatment has been authorized in September 2021 in this indication using phages produced by Phagenix- ©. The aim of this placebo controlled study is to demonstrate the efficacy and safety of nebulized anti-Pa bacteriophages, delivered to the lung using a vi-brating mesh nebulizer, in addition to conventional IV ATB treatment.
Study Type
INTERVENTIONAL
Allocation
RANDOMIZED
Purpose
TREATMENT
Masking
TRIPLE
Enrollment
184
Five administrations of phages daily from D1 to D5
Five administrations of saline solution daily from D1 to D5
CHU Amiens
Amiens, France
CHU Amiens
Amiens, France
CHU Angers
Angers, France
Hôpital Avicenne
Bobigny, France
Hôpital Avicenne
Bobigny, France
CHU Clermont-Ferrand
Clermont-Ferrand, France
Hôpital Louis Mourier
Colombes, France
Hôpital Henri Mondor
Créteil, France
Hôpital Bicêtre
Le Kremlin-Bicêtre, France
CHU Nice
Nice, France
...and 6 more locations
Proportion of patients alive and cured at D28 and without any recurrence of Pa-VAP between the initial episode and D28.
Cure is defined as : * Resolution of signs and symptoms of infection * Improvement of PaO2/FiO2 ratio as compared to value the day VAP is diagnosed * No appearance of new signs of sepsis All 3 criteria must be fulfilled 7 to 10 days after antibiotic initiation Recurrence is defined as: -a clinically suspected VAP (fever, radiological opacity, increase in ventilation need) A microbiological confirmation with Pa recovered at a significant level from lung sample (≥10\^4/ml for BAL or ≥10\^5/ml for tracheal aspirate or ≥ 10\^3 CFU/mL for plugged telescopic catheter).
Time frame: Day 28
Resolution of ventilator-associated pneumonia symptoms
Time frame: Day 7 +/- 3 days
Incidence of new ventilator-associated pneumonia
Time frame: Day 7 +/- 3 days and day 14
Clinical improvement, defined by a modified Clinical pulmonary infection score <4 (range 0-12, with higher score indicating worse outcome) and no new Pseudomonas aeruginosa ventilator-associated pneumonia episode
Time frame: Day 14
Incidence of Pseudomonas aeruginosa detection in respiratory samples
Time frame: Day 3, Day 5, Day 7, Day 10, Day 14 and Day 28
Number of days alive
Time frame: Day 28
Number of day without invasive mechanical ventilation
Time frame: Day 28
Number of day without antibiotics
Time frame: Day 28
Anti-phage antibody presence and titers,
Time frame: Day 1, 7, 10, 14 and 28
Phage neutralization titers
Time frame: Day 1, 7, 10, 14 and 28
Mortality rate
Time frame: Day 28 and Day 60
Prevalence of ESBL-producing and carbapenem-resistant Gram-negative bacteria in fecal and tracheal aspirate samples
Time frame: Day 28
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