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Intensive Alveolar Recruitment Protocol After Cardiac Surgery

Comparison of Two Protective Mechanical Ventilation Strategies After Cardiac Surgery: Aggressive Versus Moderate Alveolar Recruitment Strategies

Status
Completed
Phases
NA
Study type
Interventional
Source
ClinicalTrials.gov
Registry ID
NCT01502332
Enrollment
320
Registered
2011-12-30
Start date
2011-12-31
Completion date
2014-03-31
Last updated
2016-11-23

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

Conditions

Acute Lung Injury, Cardiac Disease, Ventilator Induced Lung Injury

Keywords

Mechanical ventilation, Open lung approach, Blood gases, Cardiac surgery, Pulmonary complications

Brief summary

The purpose of this study was to evaluate prospectively the impact of two protective mechanical ventilation strategies, both using low tidal volume ventilation (6 mL/kg/ibw) after cardiac surgery. The study selected patients presenting signals of deficient gas exchange (PaO2/FIO2 \< 250 at a PEEP \[positive end expiratory pressure\] of 5 cmH2O) in the immediate post-operative period. An aggressive alveolar recruitment protocol applying opening pressures of 45 cmH2O, followed by ventilation with PEEP = 13 cmH2O, was compared to the standard alveolar recruitment protocol of the institution, where an opening pressure of 20 cmH2O in the airways is followed by ventilation with PEEP = 8 cmH2O. After a stabilizing period of four hours of controlled mechanical ventilation, the patients followed the routine weaning protocol and physiotherapy protocol of the institution.

Detailed description

The postoperative period of cardiac surgery is associated with the development of pulmonary complications. Functional residual capacity can be reduced up to 50% and pulmonary volumes may be decreased until three months after surgery. Lung injury is the result of pulmonary inflammation (activated by cardiopulmonary bypass, the surgical procedure itself and ischemia-reperfusion injury), the adopted mechanical ventilation strategy and a consequence of previous cardiac and/or pulmonary dysfunction. The use of protective mechanical ventilation strategies with low tidal volumes since the immediate postoperative period, or since the operating room, has been shown to attenuate and prevent lung injury in previous studies selecting with high-risk patients. A more complex topic, however, has been the proof of the additional benefit of alveolar recruitment maneuvers during the brief period of mechanical ventilation after surgery. While the experimental evidence suggests that the use of an open lung approach could minimize the shearing forces in the lung parenchyma, enhancing the protection afforded by low tidal volume ventilation, innumerous concerns about the hemodynamic side effects, and the possibility of barotrauma have prevented the routine use of intensive alveolar recruitment protocols. Another matter of concern is the net efficacy of a recruitment maneuver applied in the post-operative period, instead of the intra-operative period. Thus, this study compared the impact of two protective mechanical ventilation strategies, both using low-tidal volume ventilation (6 mL/kg/ibw) after cardiac surgery, in a selective population of patients presenting signals of deficient gas exchange (PaO2/FIO2 \< 250 at a PEEP of 5 cmH2O) in the immediate post-operative period. In a previous study at this institution, this subgroup of patients was shown to be at higher risks of postoperative pulmonary complications. During the short period of controlled mechanical ventilation after the patient arrival from the operating theater, an aggressive alveolar recruitment protocol applying opening pressures of 45 cmH2O, followed by ventilation with PEEP = 13 cmH2O, was compared to the standard alveolar recruitment protocol of the institution, where an opening pressure of 20 cmH2O in the airways is followed by ventilation with PEEP = 8 cmH2O. After an stabilizing period of four hours of controlled mechanical ventilation, the patients followed the routine weaning protocol and physiotherapy protocol of the institution. Our hypothesis was that the aggressive alveolar recruitment strategy might help in the reversal of collapse created during the surgery and short term mechanical ventilation during anesthesia and patient transportation. Previous studies have shown that this effect may extend to the post-extubation period, impairing lung function for a few days. Thus, we tested if the effect of an aggressive alveolar recruitment protocol was translated in a better lung compliance, better gas exchange, and fewer pulmonary complications in the post-operative periods (this latter was our primary outcome). Analysis of the length of stay was also scrutinized, consisting in our secondary outcome. All hemodynamic complications was reported, since we also anticipated that events of hemodynamic impairment might be more frequent in the aggressive recruitment arm, eventually obscuring the expected benefits .

Interventions

OTHERIntensive Alveolar Recruitment

Recruitment with opening pressures of 45 cmH2O in the airways, followed by ventilation with PEEP = 13 cmH2O, during 4 hours of protective mechanical ventilation with tidal volume (VT) = 6 mL/kg/pbw.

OTHERModerate Alveolar Recruitment

Recruitment with opening pressures of 20 cmH2O in the airways, followed by ventilation with PEEP = 8 cmH2O, during 4 hours of protective mechanical ventilation with VT = 6 mL/kg/pbw.

Sponsors

InCor Heart Institute
CollaboratorOTHER
University of Sao Paulo
Lead SponsorOTHER

Study design

Allocation
RANDOMIZED
Intervention model
PARALLEL
Primary purpose
TREATMENT
Masking
TRIPLE (Subject, Caregiver, Outcomes Assessor)

Eligibility

Sex/Gender
ALL
Age
18 Years to 80 Years
Healthy volunteers
No

Inclusion criteria

* Immediate postoperative period of myocardial revascularization and/or heart valve surgery (aortic and/or mitral) * Age \> 18 years and \< 80 years * No previous pulmonary disease * Left ventricular ejection fraction \> 35% * Body mass index \< 40 kg/m2 * Oxygen index (PaO2/FiO2) \< 250 * Corrected volemic status (negative raising legs mean arterial pressure \[MAP\] variation \< 10%) * Written inform consent

Exclusion criteria

* MAP (mean arterial pressure) \< 60 mmHg * Noradrenaline \> 2 micrograms/Kg/min * Acute arrhythmias * Blooding associated to hemodynamic instability * Need of re-surgery and/or mechanical circulatory assistance * Suspicion of neurological alteration * Chest tube with persistent air leak

Design outcomes

Primary

MeasureTime frameDescription
Severity of Pulmonary Complications in the Post-operative PeriodParticipants were followed for the duration of hospital stay.Score of pulmonary complications adapted from previous publications, with 5 degrees, where the higher one means death before hospital discharge, degree (4) means the need of mechanical ventilation for more than 48 hours after surgery or after reintubation, degree (3) means pneumonia or intense noninvasive ventilation need, degree (2) means hypoxemia and abnormal lung findings, degree 1 means simple atelectasis and degree (0) means no complication. The comparison used this ordinal variable, representing the highest score achieved during the post-operative period. The comparison between arms was made through the Mann-Whitney U test. Data shown are percentage of participants with pulmonary complications grade ≥ 3.

Secondary

MeasureTime frameDescription
Length of ICU StayFrom the day of surgery up to ICU discharge, maximum censoring at day 28 after surgeryDays since surgery until ICU discharge, analyzed through Kaplan-Meyer curves (log-Rank test), where the time to event is the time of discharge from the ICU. The censoring was performed at 28 days. Patients dying before leaving the ICU were censored as not discharged from ICU at day 28.
Length of Hospital StayFrom the day of surgery up to Hospital discharge, maximum censoring at day 28 after surgeryDays since surgery until Hospital discharge, analyzed through Kaplan-Meyer curves (log-Rank test), where the time to event is the time of discharge from the Hospital. The censoring was performed at 28 days. Patients dying before leaving the Hospital were censored as not discharged from Hospital at day 28.
Incidence of BarotraumaFive days after surgeryConfirmed by X-ray. Test with logistic regression
Hospital MortalityFrom the day of surgery up to Hospital discharge or death, with no maximum censoring.Deaths occurred during hospital stay, tested with logistic regression.

Countries

Brazil

Participant flow

Participants by arm

ArmCount
Intensive Alveolar Recruitment
Recruitment with opening pressures of 45 cmH2O in the airways, followed by ventilation with PEEP = 13 cmH2O, during 4 hours of protective mechanical ventilation with VT = 6 mL/kg/pbw.
157
Moderate Alveolar Recruitment
Recruitment with opening pressures of 20 cmH2O in the airways, followed by ventilation with PEEP = 8 cmH2O, during 4 hours of protective mechanical ventilation with VT = 6 mL/kg/pbw.
163
Total320

Baseline characteristics

CharacteristicModerate Alveolar RecruitmentIntensive Alveolar RecruitmentTotal
Age, Categorical
<=18 years
0 Participants0 Participants0 Participants
Age, Categorical
>=65 years
63 Participants57 Participants120 Participants
Age, Categorical
Between 18 and 65 years
100 Participants100 Participants200 Participants
Age, Continuous63 years62 years62 years
Region of Enrollment
Brazil
163 participants157 participants320 participants
Sex: Female, Male
Female
66 Participants59 Participants125 Participants
Sex: Female, Male
Male
97 Participants98 Participants195 Participants

Adverse events

Event typeEG000
affected / at risk
EG001
affected / at risk
deaths
Total, all-cause mortality
— / —— / —
other
Total, other adverse events
0 / 1570 / 163
serious
Total, serious adverse events
0 / 1570 / 163

Outcome results

Primary

Severity of Pulmonary Complications in the Post-operative Period

Score of pulmonary complications adapted from previous publications, with 5 degrees, where the higher one means death before hospital discharge, degree (4) means the need of mechanical ventilation for more than 48 hours after surgery or after reintubation, degree (3) means pneumonia or intense noninvasive ventilation need, degree (2) means hypoxemia and abnormal lung findings, degree 1 means simple atelectasis and degree (0) means no complication. The comparison used this ordinal variable, representing the highest score achieved during the post-operative period. The comparison between arms was made through the Mann-Whitney U test. Data shown are percentage of participants with pulmonary complications grade ≥ 3.

Time frame: Participants were followed for the duration of hospital stay.

ArmMeasureValue (NUMBER)
Intensive Alveolar RecruitmentSeverity of Pulmonary Complications in the Post-operative Period15 percentage of participants
Moderate Alveolar RecruitmentSeverity of Pulmonary Complications in the Post-operative Period26 percentage of participants
p-value: 0.016Wilcoxon (Mann-Whitney)
Secondary

Hospital Mortality

Deaths occurred during hospital stay, tested with logistic regression.

Time frame: From the day of surgery up to Hospital discharge or death, with no maximum censoring.

ArmMeasureValue (NUMBER)
Intensive Alveolar RecruitmentHospital Mortality3 percentage of participants
Moderate Alveolar RecruitmentHospital Mortality5 percentage of participants
p-value: 0.267Regression, Logistic
Secondary

Incidence of Barotrauma

Confirmed by X-ray. Test with logistic regression

Time frame: Five days after surgery

ArmMeasureValue (NUMBER)
Intensive Alveolar RecruitmentIncidence of Barotrauma0 percentage of participants
Moderate Alveolar RecruitmentIncidence of Barotrauma1 percentage of participants
Secondary

Length of Hospital Stay

Days since surgery until Hospital discharge, analyzed through Kaplan-Meyer curves (log-Rank test), where the time to event is the time of discharge from the Hospital. The censoring was performed at 28 days. Patients dying before leaving the Hospital were censored as not discharged from Hospital at day 28.

Time frame: From the day of surgery up to Hospital discharge, maximum censoring at day 28 after surgery

ArmMeasureValue (MEDIAN)
Intensive Alveolar RecruitmentLength of Hospital Stay8 days
Moderate Alveolar RecruitmentLength of Hospital Stay9 days
p-value: 0.037Log Rank
Secondary

Length of ICU Stay

Days since surgery until ICU discharge, analyzed through Kaplan-Meyer curves (log-Rank test), where the time to event is the time of discharge from the ICU. The censoring was performed at 28 days. Patients dying before leaving the ICU were censored as not discharged from ICU at day 28.

Time frame: From the day of surgery up to ICU discharge, maximum censoring at day 28 after surgery

ArmMeasureValue (MEDIAN)
Intensive Alveolar RecruitmentLength of ICU Stay3 days
Moderate Alveolar RecruitmentLength of ICU Stay3 days
p-value: 0.014Log Rank

Source: ClinicalTrials.gov · Data processed: Feb 27, 2026