The sixth affiliated hospital of Sun Yat-Sen university
Guangzhou, Guangdong, 510655, China
NCT Number: NCT03160144
Postoperative Pulmonary Complications (PPC) are very common. It severely affects postoperative recovery, particularly in the abdominal surgery. Patients with laparoscopic resection of colorectal cancer generally have a higher age and decreased lung function reserve. At the same time, they prone to developing atelectasis due to the effects of pneumoperitoneum pressure. Therefore, they are a high-risk group of respiratory insufficiency and PPC.
Mechanical ventilation with a low tidal volume is a routine in clinic nowadays. However, this conventional strategy will also result in atelectasis formation. Therefore, it may deteriorate the vulnerable lung function of patients undergoing laparoscopic resection of colorectal cancer. Patients with Acute Lung Injury or Acute Respiratory Distress Syndrome (ALI/ARDS) could benefit from the "open lung approach", including the use of positive end-expiratory pressure (PEEP) and recruitment maneuvers (RMs). Whether a lung protective mechanical ventilation strategy with medium levels of PEEP and repeated RMs, the "open lung approach", protects against respiratory insufficiency and PPC during laparoscopic resection of colorectal cancer is uncertain. The present study aims at comparing the effects of "open lung approach" mechanical ventilation strategy and conventional mechanical ventilation strategy in PPC, extra-pulmonary complications, length of hospital stay, biomarkers of lung injury and changes of respiratory function in patients undergoing general anesthesia for laparoscopic resection of colorectal cancer.
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Notify Me40 year and older
All sexes
Interventional
Not applicable
Guangzhou, Guangdong, 510655, China
Research will be carried out in two stages. Completely-randomized design was used in the first stage, and randomized block design in the second stage. The interim analysis will be performed when 100 patients (first stage) have successfully been included and followed-up. The Data Monitoring and Safety Group (DMSG) will provide recommendations about stopping or continuing the trial to the principal investigator. The DMSG will recommend stopping the trial, if significant group-difference in adverse events is found at the interim analysis (p<0.025), or if postoperative pulmonary complications occur more frequently in the intervention group (p<0.025). If the intervention has a strong trend for improving postoperative pulmonary complications (p<0.018) at the first stage, termination of the study is considered.
In each group, anesthesiologists will be advised to use an inspired oxygen fraction (FIO2) between 0.4 to 0.5 and to maintain oxygen saturation ≥ 92%. The inspiratory to expiratory time ratio will be set at 1:2, with a respiratory rate adjusted to maintain normocapnia (end-tidal carbon dioxide concentration of 30-50 mmHg).
PBW is calculated according to a predefined formula with: 50 + 0.91 x (centimeters of height - 152.4) for males and 45.5 + 0.91 x (centimeters of height - 152.4) for females. In each group, patients will be ventilated using the volume-controlled ventilation strategy using an anesthesia ventilator: 1. Avance® (Datex-Ohmeda, General Electric, Helsinki, Finland) 2. Tiro® (Dräger, Lübeck, Germany)
Stepwise increase of tidal volume will be used as a method of recruitment maneuvers in this trial. Recruitment maneuvers should not be performed when patients are hemodynamic unstable, as judged by the attending anesthesiologist. Recruitment maneuvers will be performed as follows:
4-1. Peak inspiratory pressure limit is set at 45 cmH2O. 4-2. Tidal volume is set at 8 ml/kg PBW and respiratory rate at 6 breaths/min, while PEEP is set at 12 cmH2O.
4-3. Inspiratory to expiratory ratio (I:E) is set at 1:2. 4-4. Tidal volumes are increased in steps of 4 ml/kg PBW until a plateau pressure of 30-35 cmH2O (if tidal volume reach the biggest volume of the ventilator and plateau pressure cannot reach 30-35 cmH2O, then PEEP is set at 16 cmH2O for a plateau pressure of 30-35 cmH2O).
4-5. Three breaths are administered with a plateau pressure of 30-35 cmH2O. 4-6. Peak inspiratory pressure limit, respiratory rate, I: E, and tidal volume are set back to settings preceding each recruitment maneuver, while maintaining PEEP at 8 cmH2O.
All adverse events, serious adverse events, unexpected or possibly related events will be recorded in the CRF and reported to the DMSG.
Healthy volunteers accepted: No
Only the study team can determine whether someone qualifies for participation.
Inclusion criteria
Exclusion criteria
Other names: open lung strategy
Time frame: Day 0 to 7 after surgery
Major pulmonary complications were defined as suspected pneumonia,acute respiratory failure and sustained hypoxia; Major extrapulmonary complications were defined as sepsis, severe sepsis and septic shock or death.
Time frame: Intraoperative, period of mechanical ventilation
Peak airway Pressure(Ppeak, cm H2O);
Time frame: Intraoperative, period of mechanical ventilation
Plateau airway pressure(Pplat, cm H2O);
Time frame: Intraoperative, period of mechanical ventilation
Static lung compliance (Csta, ml/cm H2O) = Vt/ (Pplat-PEEP);
Time frame: Intraoperative, period of mechanical ventilation
Dynamic lung compliance (Cdyn , ml/cm H2O)= Vt/ (Ppeak-PEEP);
Time frame: pre-anesthesia, 0.5 hour after pneumoperitoneum, 1.5 hours after pneumoperitoneum, 20 minutes after entering PACU
Arterial partial pressure of oxygen (PaO2, mmHg); post-anaesthesia care unit (PACU);
Time frame: pre-anesthesia, 0.5 hour after pneumoperitoneum, 1.5 hours after pneumoperitoneum, 20 minutes after entering PACU
Alveolar-arterial oxygen tension difference (A-aDO2, mmHg);
Time frame: pre-anesthesia, 0.5 hour after pneumoperitoneum, 1.5 hours after pneumoperitoneum, 20 minutes after entering PACU
Alveolar oxygen pressure (PAO2); Arterial- alveolar oxygen tension ratio ( a / A ratio) =PaO2 / PAO2;
Time frame: pre-anesthesia, 0.5 hour after pneumoperitoneum, 1.5 hours after pneumoperitoneum, 20 minutes after entering PACU
Fraction of inspired oxygen (FiO2); Respiratory index (RI) = P(A-a)DO2/ FiO2;
Time frame: pre-anesthesia, 0.5 hour after pneumoperitoneum, 1.5 hours after pneumoperitoneum, 20 minutes after entering PACU
Oxygenation index (OI)=PaO2/FiO2;
Time frame: pre-anesthesia, 0.5 hour after pneumoperitoneum, 1.5 hours after pneumoperitoneum, 20 minutes after entering PACU
Arterial carbon dioxide partial pressure (PaCO2); partial pressure of carbon dioxide in endexpiratory gas (PetCO2); Alveolar dead space fraction (Vd/Vt)=(PaCO2-PetCO2)/ PaCO2;
Time frame: pre-anesthesia, 0.5 hour after pneumoperitoneum, 1.5 hours after pneumoperitoneum, 20 minutes after entering PACU
Lactic acid ( LAC, mmol/L);
Time frame: The first stage of the study: 0.5 hour after pneumoperitoneum, 1.5 hours after pneumoperitoneum, 20 minutes after entering PACU
Oxygen content of central venous blood (CvO2); Oxygen content of arterial blood (CaO2); oxygen extraction ratio (O2ER)=(CaO2-CvO2) /CaO2;
Time frame: The first stage of the study: 0.5 hour after pneumoperitoneum, 1.5 hours after pneumoperitoneum, 20 minutes after entering PACU
Central venous blood oxygen saturation (ScvO2).
Time frame: Intraoperative (pre-anesthesia, post-operation) and postoperative (postoperative day 3)
Advanced glycation end products receptor (RAGE, pg/ml).
Time frame: Intraoperative (pre-anesthesia, post-operation) and postoperative (postoperative day 3)
S100 beta protein (S100β, μg/L).
Time frame: Intraoperative (pre-anesthesia, post-operation) and postoperative (postoperative day 3)
Tumor Necrosis Factor alpha (TNF-α, pg/ml);
Time frame: Intraoperative (pre-anesthesia, post-operation) and postoperative (postoperative day 3)
Interleukin 6 (IL-6, pg/ml).
Time frame: 20 minutes after entering PACU
The occurrence rate of hypoxemia (PaO2<60 mmhg) in PACU
Time frame: Though study completion, an average of half an hour.
Length of PACU stay (min);
Time frame: Though study completion, an average of one hour.
The recovery time from anesthesia (min).
Time frame: Day 0 to 7 after surgery
The incidence of postoperative pulmonary complications based on a PPC scale.
Time frame: Day 0 to 7 after surgery
Occurrence rate of acute respiratory failure (SpO2< 90% or PaO2<60mmhg);
Time frame: Day 0 to 7 after surgery
Occurrence rate of postoperative pneumonia;
Time frame: Day 0 to 7 after surgery
Occurrence rate of saturation of pulse oximetry less than 92%;
Time frame: Day 0 to 7 after surgery
Occurrence rate of sustained hypoxia
Time frame: Day 0 to 7 after surgery
Saturation of pulse oximetry (SpO2);
Time frame: Intraoperative, period of mechanical ventilation
Intervention-related adverse events including: rescue therapy for desaturation, potentially harmful hypotension, pneumothorax, vasoactive drugs needed.
Time frame: Day 1 to 3 after surgery
Postoperative delirium will be estimated by a scale called Confusion Assessment Method-ICU.
Time frame: Day 0 to 7 after surgery
Related complications including: the systemic inflammatory response syndrome (SIRS), acute myocardial infarction (AMI), Acute hepatic and renal insufficiency; surgical complications including intraabdominal abscess, anastomotic leakage.
Time frame: Up to 30 days after surgery
Unplanned reoperation after 24h (operation not caused by bleeding in 24h).
Time frame: Up to 30 days after surgery
Postoperative hospital stay.
Time frame: The first stage of the study: intraoperative, when lung recruitment maneuver is operated.
Systolic blood pressure (SBP, mmHg);
Time frame: The first stage of the study: intraoperative, when lung recruitment maneuver is operated.
Diastolic blood pressure (DBP, mmHg);
Time frame: The first stage of the study: intraoperative, when lung recruitment maneuver is operated.
Mean arterial pressure (MBP, mmHg); heart rate (HR, bpm).
Time frame: The first stage of the study: intraoperative, when lung recruitment maneuver is operated.
Heart rate (HR, bpm).
Time frame: Up to 30 days after surgery
Death from any cause 30 days after surgery.
Time frame: Up to 30 days after surgery
Unplanned admission to ICU (not caused by bleeding in 24h).
Time frame: before anesthesia induction, 0.5 h and 1.5 h after pneumoperitoneum induction, and 20 min after postanesthesia care unit (PACU) admission
PaO2/FIO2 ≤ 300 mmHg
Sixth Affiliated Hospital, Sun Yat-sen University
Other
Effects of Open Lung Approach on Intraoperative Respiratory Function and Postoperative Recovery of Patients With Laparoscopic Colorectal Resection
Acronym: PROVOLON
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