The purpose of this study is to find a better way to protect the lungs of patients with Acute Respiratory Distress Syndrome (ARDS) who are being treated with a mechanical ventilator in addition to an extracorporeal membrane oxygenation (ECMO) machine. ARDS is a serious lung condition that makes it hard to breathe. People with ARDS often need care in the intensive care unit (ICU) and can become very sick with high mortality rates despite optimal care. Doctors usually support patients with through ARDS with a breathing machine called a ventilator. The ventilator helps lungs imitate taking small breaths to help protect the lungs from more damage, however ventilator induced lung injury (VILI) can still contribute significantly to organ injury. For patients in whom a ventilator is not enough support due to the severity of their lung disease, veno-venous (VV) ECMO can fully support the lungs while they recover. In these sickest patients, it is important to avoid causing more lung damage with the ventilator. Protecting the lungs may help them heal faster and may also help protect other parts of the body. More people are now being treated with VV ECMO, but there is still not enough research to know which ventilator settings are safest and work best. Most current recommendations are based on doctors' experience instead of research studies. This study will help researchers learn the best way to use ventilators for patients on VV ECMO and improve their recovery.
Acute respiratory distress syndrome (ARDS) is a common intensive care unit (ICU) admission diagnosis with mortality nearing 50% in severe cases. Traditional management focuses on lung protective ventilation consisting of low tidal volumes while limiting plateau and driving pressures. Veno-venous extracorporeal membrane oxygenation (VV-ECMO) is a guideline recommended intervention for patients with severe ARDS refractory to other interventions. The optimal lung protective ventilation strategy for patients supported by VV-ECMO is unknown. Over the past few decades, significant effort in the form of multiple international, multicenter, randomized controlled trials have evaluated lung protective ventilation strategies in ARDS, highlighted by the ARMA trial which showed an 8.8% absolute mortality reduction with low tidal volume ventilation and limiting plateau pressure to \<30 cmH2O compared to standard of care at the time. These trials have helped define lung protective ventilation parameters over the past few decades, leading to significant improvements in mortality over that time. For patients with respiratory failure refractory enough to require VV ECMO support, avoiding further ventilator induced lung injury (VILI) is paramount to optimize the chances of lung recovery and avoid extrapulmonary organ dysfunction. However, despite the rapid increase in the utilization of VV ECMO for severe respiratory failure, very little prospective or randomized research has attempted to evaluate what constitutes lung protective ventilation in this patient population. In the absence of any current randomized trial evidence, management guidelines rely on expert opinion alone. These guidelines are extrapolated from lung protective ventilation studied in patients undergoing conventional mechanical ventilation despite significant differences introduced by the presence of the ECMO circuit, most notably the ability of the circuit to assume most if not all of the pulmonary support while enabling ultra-low tidal volume "lung rest" ventilation with tidal volumes of 3-4 cc/kg predicted body weight (PBW), limiting plateau pressures to ≤ 24 cmH2O but no greater than 30 cmH2O, and maintaining a respiratory rate of 4-15 breaths/minute but no greater than 30. Notably, the largest prospective observational trial of patients supported by VV ECMO for respiratory failure did not suggest an outcome benefit for any of these single traditionally targeted ventilator variables. Given the increasing utilization of VV ECMO for ARDS, there is a need for prospective evaluation of a more comprehensive approach to ventilator management as a means to minimize VILI and improve outcomes in this critically ill patient population. Mechanical power (MP) attempts to more comprehensively unify all ventilator-related causes of lung injury such as distending pressure, tidal volume, flow, and respiratory rate into a single, quantifiable variable. Thus, MP is an innovative approach to more comprehensively reducing VILI compared to traditional tidal volume or plateau targets, providing a potential new benchmark for enhanced lung-protective ventilation. MP has been independently associated with poor patient outcomes even with low tidal volume and driving pressure in multiple studies in patients with and without ARDS, as well as ECMO and non-ECMO supported patient populations across numerous retrospective and observational studies. However, despite this strong correlation, the feasibility of prospectively evaluating a MP-based strategy in a randomized fashion remains unknown. The aim of this trial is to evaluate the feasibility, safety, and tolerability of a MP-targeted ventilation protocol in patients with severe ARDS requiring VV ECMO support as the first step in ultimately evaluating the ability of such a strategy to directly impact and improve patient-oriented outcomes. Description of Study Intervention: After randomization, patients will subsequently be assigned to either a low mechanical power target (2-4 J/min) or usual care. This range was chosen as it closely mirrors the power of normal breathing in healthy subjects and falls on the lower range of that reported in retrospective and observational trials, indicating potential feasibility. As a part of the protocol, patients in both arms will meet the current standard of care regarding the individual parameters of ultra-lung protective ventilation and "lung rest" while on VV-ECMO as it is currently defined. The low mechanical power target arm will follow a well-defined mechanical ventilator management algorithm to meet the assigned target, as described below. Patients in the usual care arm will be managed at the discretion of the treating intensivist with care, including mechanical ventilation settings, sedation, VV ECMO, and additional adjunct therapies, reflecting current best practice guidelines. For patients assigned to the intervention arm, the patient will be placed on volume control (VC) or pressure control (PC) ventilation with either an initial tidal volume of 3-4cc/kg predicted body weight (PBW) (for VC) or inspiratory pressure required to reach the same tidal volume goal (for PC), FiO2 set between 0.30-0.50, and a PEEP of at least 10. This tidal volume or inspiratory pressure, for VC and PC ventilation respectively, will then be titrated down to meet a goal plateau pressure of less than or equal to 24 cmH2O, and a target driving pressure no greater than 14 cmH2O. Finally, the respiratory rate will then be titrated between 1 and 15 to meet the specified mechanical power goal range. Once the respiratory rate has been lowered to 8, tidal volumes (or inspiratory pressure required to meet this goal) will be lowered to 3cc/kg PBW prior to further reductions in respiratory rate. MP will be calculated every two hours and adjusted as needed to stay within the goal MP range until pre-specified weaning criteria are met.
Study Type
INTERVENTIONAL
Allocation
RANDOMIZED
Purpose
TREATMENT
Masking
NONE
Enrollment
24
For patients assigned to the intervention arm, the patient will be placed on volume control (VC) or pressure control (PC) ventilation with either an initial tidal volume of 3-4cc/kg predicted body weight (PBW) (for VC) or inspiratory pressure required to reach the same tidal volume goal (for PC), FiO2 set between 0.30-0.50, and PEEP of at least 10. This tidal volume or inspiratory pressure, for VC and PC respectively, will then be titrated down to meet a goal plateau pressure of less than or equal to 24 cmH2O, and a target driving pressure no greater than 14 cmH2O. Finally, the respiratory rate will then be titrated between 1 and 15 to meet the specified mechanical power goal range. Once the respiratory rate has been lowered to 8, tidal volumes will be lowered to 3cc/kg PBW prior to further reductions in respiratory rate. Mechanical power (MP) will be calculated every two hours and adjusted as needed to stay within the goal MP range until pre-defined weaning criteria are met.
University of Virginia
Charlottesville, Virginia, United States
Feasibility of prospective, randomized mechanical power-based strategy to establish a causal relationship between MP and clinical outcomes.
The primary outcome is to assess the feasibility of the intervention protocol, as assessed by the number of patients adhering to mechanical power (MP) protocol, with a target adherence of \>/= 90% of the intervention time spent within the assigned mechanical power range.
Time frame: From enrollment to the end of the intervention window of 7 days.
To evaluate the safety of a total lung protective ventilation strategy utilizing a mechanical power targeted strategy versus conventional ultra-low tidal volume ventilation.
Secondary outcome one: safety, as measured by the incidence of refractory hypoxemia and/or hypercarbia occurring during intervention window as defined by a sustained PaO2 of \<50 mmHg or saturation \<85% on two arterial blood gases drawn \>30 minutes apart and for hypercarbia as sustained PaCO2 \>65 mmHg with associated respiratory acidosis noted by a pH \< 7.20 on two arterial blood gases drawn \>30 minutes apart. Reported as number of patients in whom either incidence occurred at least one time during intervention window.
Time frame: From enrollment to end of intervention window of 7 days
To evaluate the tolerability of a total lung protective ventilation strategy utilizing a mechanical power targeted strategy versus conventional ultra-low tidal volume ventilation.
Second outcome measure: Tolerability; as measured by sedative requirements as assessed by daily the Richmond Agitation-Sedation Scale (RASS) ranging from -5 to +4 with lower scores indicating a need for deeper sedation and less tolerability. Reported as median numerical score with interquartile range (IQR).
Time frame: From enrollment to end of intervention window of 7 days
To evaluate the tolerability of a total lung protective ventilation strategy utilizing a mechanical power targeted strategy versus conventional ultra-low tidal volume ventilation.
Second outcome measure: Tolerability; as measured by requirement for use of continuous neuromuscular blockade. Reported as median number of days with interquartile ranges for which a patient requires continuous neuromuscular blockade for greater than four hours. A lower median number of days receiving continuous neuromuscular blockade indicates greater tolerability.
Time frame: From enrollment to end of intervention window of 7 days
This platform is for informational purposes only and does not constitute medical advice. Always consult a qualified healthcare professional.