Atelectasis, COVID-19, Virus; Pneumonia
Conditions
Brief summary
COVID-19 originated from Severe Acut Respiratory Syndrome Coronavirus-2 (SARS-CoV-2) infection leads to critical condition due to hypoxemic respiratory failure with the background of viral pneumonia. Both alevolar recruitment and the subsequent optimal positive end-expiratory pressure (PEEP) adjustment has a pivotal role in the elimination of atelectasis developed by inflammation in the lung parenchyma The gold standard of the follow up of recruitment manoeuvre is the chest computed tomography (CT) examination. However, reduction of intrahospital transport and the exposure with healthcare workers are recommended because of the extremely virulent pathogen spreading easily by droplet infection. In this case bedside investigations have an utmost importance in the management of hygiene regulations. Electric impedance tomography (EIT) is a non-invasive, radiation free functional imaging technique easily applicable at the bedside.
Detailed description
COVID-19 originated from Severe Acut Respiratory Syndrome Coronavirus-2 (SARS-CoV-2) infection leads to critical condition in 5% of the cases due to hypoxemic respiratory failure with the background of viral pneumonia. 90% of these patients require invasive mechanical ventilation on critical care units. Both alevolar recruitment and the subsequent optimal positive end-expiratory pressure (PEEP) adjustment has a pivotal role in the eliminitaion of atelectasis developed by inflammation in the lung parenchyma. The gold standard of the follow up of recruitment manoeuvre is the chest computed tomography (CT) examination. However, reduction of intrahospital transport and the exposure with healthcare workers are recommended because of the extremely virulent pathogen spreading easily by droplet infection. In this case bedside investigations have an utmost importance in the management of hygiene regulations. Electric impedance tomography (EIT) is a non-invasive, radiation free functional imaging technique easily applicable at the bedside. With the help of EIT, intrathoracic impedance changes, resulting from air and blood volume variations, can be determined by circumferentially attached surface electrodes around the thorax, applying small alternating currents and measuring differences in surface potentials. The calculated difference in potential is utilised to reconstruct impedance images what is employed to assess ventilation and perfusion distribution. Several local and global variances can be estimated just like the ratio fo atelectatic/overdistended alveoli, the ratio of aeration in the anterior/posterior regions, the inhomogeneity of aeration or regional compliance.
Interventions
incremental and decremental positive end-expiratory pressure alveolar recruitment
Sponsors
Study design
Eligibility
Inclusion criteria
* SARS-CoV-2 positivity confirmed by polymerase chain reaction * orotracheally intubated patients * pressure control ventilation mode * sedation level of minimum -4 on the Richmond Agitation Sedation Scale (RASS)
Exclusion criteria
* age under 18 * pregnancy * pulmonectomy, lung resection in the past medical history * clinically end stage chronic obstructive pulmonary disease * sever hemodynamic instability (vasopressor refractory shock) * sever bullous emphysema and/or spontaneous pneumothorax in the past medical history chest drainage in situ due to pneumothorax and/or bronchopleural fistula
Design outcomes
Primary
| Measure | Time frame | Description |
|---|---|---|
| Changes in lung compliance | 20 minutes | Estimation of change in compliance (ml/cmH2O) from the beginning to end of of the incremental/decremental PEEP alveolar recruitment. |
| Change in global impedance | 20 minutes | Estimation of change in global impedance (%) from the beginning to end of of the incremental/decremental PEEP alveolar recruitment. |
| Change in recruitability | 7 days | Estimation of change in global impedance (%) on a daily manner. |
Secondary
| Measure | Time frame | Description |
|---|---|---|
| Gas exchange | 20 minutes and 7 days | Change in arterial partial pressure of oxygen (PaO2) (mmHg) following recruitment |
| Plateau pressure | 20 minutes and 7 days | Change in plateau pressure (cmH2O) following recruitment |
| End expiratory lung impedance (EELI) | 20 minutes and 7 days | Change in end expiratory lung impedance (%) |
| Antero-to-posterior ventilation ratio | 20 minutes and 7 days | Change in antero-to-posterior ventilation ratio (%) following intervention |
| Center of ventilation | 20 minutes and 7 days | Change in center of ventilation (%) following intervention |
| Global inhomogeneity index | 20 minutes and 7 days | Change in global inhomogeneity index (%) following intervention |
Countries
Hungary