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Driving Pressure and Postoperative Pulmonary Complications in Thoracic Surgery

Comparison of Postoperative Pulmonary Complications Between Driving Pressure Guided Ventilation and Conventional Protective Ventilation in Thoracic Surgery

Status
Completed
Phases
NA
Study type
Interventional
Source
ClinicalTrials.gov
Registry ID
NCT04260451
Enrollment
1300
Registered
2020-02-07
Start date
2020-03-02
Completion date
2021-05-31
Last updated
2021-07-12

For informational purposes only — not medical advice. Sourced from public registries and may not reflect the latest updates. Terms

Conditions

Driving Pressure, One-Lung Ventilation, Positive End Expiratory Pressure, Postoperative Complications, Postoperative Pulmonary Complication, Thoracic Surgery

Keywords

Postoperative pulmonary complication, Driving pressure, Thoracic surgery, One lung ventilation, Positive end expiratory pressure

Brief summary

Pulmonary complications are the most common complication in thoracic surgery and the leading cause of mortality.Therefore, lung protection is utmost important, and protective ventilation is strongly recommended in thoracic surgery. Protective ventilation is a prevailing ventilatory strategy in these days and is comprised of small tidal volume, limited inspiratory pressure, and application of positive end-expiratory pressure. However, several retrospective studies recently suggested that tidal volume, inspiratory pressure, and positive end-expiratory pressure are not related to patient outcomes, or only related when they influenced the driving pressure. Recently, the investigators reported the first prospective study about the driving pressure-guided ventilation in thoracic surgery. PEEP was titrated to bring the lowest driving pressure in each patient and applied throughout the one lung ventilation. The application of individualized PEEP reduced the incidence of pulmonary complications.However, that study was small size single center study with 312 patients. Thus, investigators try to perform large scale multicenter study. Through this study investigators evaluate that driving pressure-guided ventilation can reduce the incidence of postoperative pulmonary complications compared with conventional protective ventilation in thoracic surgery.

Detailed description

Nowdays, the usual setting of protective ventilation during one lung ventilation is tidal volume (VT) 5 ml/kg of predicted body weight, positive end-expiratory pressure (PEEP) 5 cm H2O and plateau pressure (Pplat) less than 25 cmH2O. However, a high incidence of postoperative pulmonary complications is still being observed even with a protective ventilatory strategy. Driving pressure is \[Pplat - PEEP\] and is the pressure required for the alveolar opening. Static lung compliance (Cstat) is expressed as \[VT / (Pplat - PEEP)\]. Thus, driving pressure is also expressed as \[VT / Cstat\]. Driving pressure has an inverse relationship with Cstat and orthodromic relationship with VT according to this formula. High driving pressure indicates poor lung condition with decreased lung compliance. Thus, investigator try to prove that driving pressure limited ventilation is superior in preventing postoperative pulmonary complications to existing protective ventilation in large scale multicenter study. Recruit maneuver perform all group after intubation (stepwise increase of positive end expiratory pressure 5,10,15 cmH2O with tidal volume 5mL/kg). The control arm receives existing conventional protective ventilation with tidal volume of 5mL/kg of ideal body weight and PEEP of 5 cmH2O during one-lung ventilation. The driving pressure arm receives driving pressure limited ventilation with tidal volume of 5mL/kg of ideal body weight and individualized PEEP. Individualized PEEP is adjusted to minimize driving pressure, it find through decremental PEEP titration from 10 to 2 cmH2O during one-lung ventilation.

Interventions

OTHERventilation

Driving Pressure Limited Ventilation Positive end expiratory pressure is adjusted to minimize driving pressure, plateau pressure minus end expiratory pressure from 10 to 2 cmH2O during one-lung ventilation. 1\. Lung recruitment: stepwise increase of positive end expiratory pressure 5,10,15 cmH2O with tidal volume 5mL/kg, inspiratory:expiratory 1:1, respiratory rate 10. and driving pressure up to 20 cmH2O. Then decremental PEEP titration is performed using a volume-controlled ventilation until the lowest driving pressure (plateau pressure minus PEEP) is found. This individualized PEEP is adjusted during one-lung ventilation.

Sponsors

Severance Hospital
CollaboratorOTHER
Seoul National University Hospital
CollaboratorOTHER
Asan Medical Center
CollaboratorOTHER
Korea University Guro Hospital
CollaboratorOTHER
The Catholic University of Korea
CollaboratorOTHER
Samsung Medical Center
Lead SponsorOTHER

Study design

Allocation
RANDOMIZED
Intervention model
PARALLEL
Primary purpose
PREVENTION
Masking
TRIPLE (Subject, Investigator, Outcomes Assessor)

Eligibility

Sex/Gender
ALL
Age
19 Years to No maximum
Healthy volunteers
No

Inclusion criteria

Adults older than or equal to 19 years with American Society of Anesthesiologists physical status Ⅰ-Ⅲ Patient who undergoes one-lung ventilation (more than 60 minutes) for elective thoracic surgery

Exclusion criteria

1. The American Society of Anesthesiologists (ASA) Physical Status classification greater than or equal to 4 2. Symptoms of heart failure (hypertension, urination, pulmonary edema, left ventricular outflow rate \<45%) or preoperative vasopressors 3. Patient who is received oxygen therapy and ventilation care 4. large emphysema and pneumothorax 5. pregnancy and lactation 6. patients participating in similar studies 7. Joint with other operation 8. Patient who rejects being enrolled in the study 9. Patients with elevated intracranial pressure 10. Patients with peripheral neuropathy or blood circulation disorders 11. Patients with hematology disease 12. Congenital heart disease with shunt

Design outcomes

Primary

MeasureTime frameDescription
the incidence of postoperative pulmonary complicationswithin the first 7 days after surgeryPostoperative pulmonary complications are defined as one or more of the following: * Hypoxia: SpO2 \< 90% * Requiring oxygen therapy: Facial mask, nasal prong, continuous positive airway pressure, non-invasive positive pressure breathing or high flow nasal oxygen supply between POD 2 and 7. * Initial ventilator supports longer than 24 h * Re-intubation * Requiring mechanical ventilation * Tracheostomy * Pneumonia * Empyema * Atelectasis requiring bronchoscopy * Acute respiratory distress syndrome * Acute lung injury * Persistent emphysema or pneumothorax or air leak requiring chest tube for 5 days or more * Prolonged pleural effusion requiring chest tube for 5 days or more * Bronchopleural fistula * Contralateral pneumothorax * Pulmonary embolism embolism

Secondary

MeasureTime frameDescription
the incidence of rescue ventilationduring surgerythe need for rescue ventilation to treat hypoxia (Inspired oxygen fraction 1.0, two lung ventilation, recruitment, PEEP change, Tidal volume change, continuous positive pressure ventilation, change to pressure control mode)
Cstat15 minutes after one-lung ventilationLung compliance (mL/mmHg)
CRPwithin the first 1 days after surgeryC-reactive protein (mg/L) of laboratory exam
the incidence of postoperative transfusionwithin the first 3 days after surgeryred blood cell, fresh frozen plasma, platelet
the incidence of postoperative renal complicationswithin the first 7 days after surgeryacute kidney injury(acute kidney injury network criteria): Stage I: Diuresis \< 0.5 mg/kg (6 h) or increase in serum Cr \> 0.3 mg/dl. Stage II: Diuresis \< 0.5 mg/kg (12 h) or basal Cr x 2 mg/dL. Stage III: Diuresis \< 0.3 mg/kg (24 h) or anuria (12 h) or basal Cr x 3 mg/dL, or Cr \> 4 mg/dL or renal replacement therapy.
the incidence of postoperative cognitive complicationswithin the first 7 days after surgerydiagnosed by Confusion Assessment method (CAM: positive or negative) or Medicines for treating delirium symptoms include antipsychotic drugs and benzodiazepines
the incidence of postoperative surgical site complicationswithin the first 7 days after surgery: The CDC defines a superficial incisional surgical site infection as one which meets the following criteria. 1. Infection occurs within 30 days after surgery and 2. Involves only skin and subcutaneous tissue of the incision and 3. The patient has at least one of the following: 1. purulent drainage from the superficial incision 2. organisms isolated from an aseptically obtained culture of fluid or tissue from the superficial incision 3. at least one of the following symptoms or signs of infection: pain or tenderness, localised swelling, redness or heat, and superficial incision is deliberately opened by surgeon and is culture positive or not cultured. A culture negative finding does not meet this criterion. 4. diagnosis of an incisional surgical site infection by a surgeon or attending physician.
oxygenation15 minutes after one-lung ventilationPartial pressure of oxygen in arterial blood (PaO2, mmHg) or PaO2/Inspired oxygen fraction (PF ratio)
the incidence of coronary thrombosiswithin the first 7 days after surgeryPercutaneous coronary intervention or coronary artery surgery
the incidence of cerebral infarctionwithin the first 7 days after surgeryMagnetic resonance imaging diagnosis
the incidence of septic shockwithin the first 7 days after surgery: A subset of sepsis (a life-threatening organ dysfunction resulting from dysregulated host responses to infection) in which underlying circulatory, cellular, and metabolic abnormalities are profound enough to substantially increase the risk of mortality. Despite adequate fluid resuscitation, patients have hypotension requiring vasopressors to maintain a mean arterial blood pressure above 65 mmHg and have an elevated serum lactate concentration of more than 2 mmol/L
the incidence of new arrythmiawithin the first 7 days after surgeryNew arrhythmias that persist for more than 2 days
Length of stay in the intensive care unit and hospitalwithin the first 30 days after surgerythe duration of hospital stay and intensive care unit stay (day)
the incidence of re-admissionwithin the first 30 days after surgeryre-admission because of surgical related problems
mortalitywithin the first 30 days after surgeryin hospital death or out of hospital
the incidence of acute myocardial infarctionwithin the first 7 days after surgeryAcute myocardial injury with clinical evidence of acute myocardial ischemia and with detection of a rise and/or fall of cardiac troponin values with at least one value above the 99th percentile upper reference limit and at least one of the following: 1. Symptoms of myocardial ischemia 2. New ischemic ECG changes 3. Development of pathological Q waves 4. Imaging evidence of new loss of viable myocardium or new regional wall motion abnormality in a pattern consistent with an ischemic etiology 5. Identification of a coronary thrombus by angiography or autopsy (not for types 2 or 3 myocardial infarctions)

Countries

South Korea

Outcome results

None listed

Source: ClinicalTrials.gov · Data processed: Feb 14, 2026