Lung Response to a Higher Positive End-Expiratory Pressure in Mechanically Ventilated Patients With COVID-19

Chest - Tập 161 - Trang 979-988 - 2022
Alessandro Protti1,2, Alessandro Santini2, Francesca Pennati3, Chiara Chiurazzi2, Massimo Cressoni4, Michele Ferrari2, Giacomo E. Iapichino2, Luca Carenzo2, Ezio Lanza5, Giorgio Picardo6, Pietro Caironi7,8, Andrea Aliverti3, Maurizio Cecconi6,2
1Department of Biomedical Sciences, Humanitas University, Pieve Emanuele-Milan, Italy
2Department of Anesthesia and Intensive Care Units, Humanitas Clinical and Research Center—IRCCS, Rozzano, Milan, Italy
3Dipartimento Di Elettronica Informazione E Bioingegneria, Politecnico Di Milano, Milan, Italy
4Unit of Radiology, IRCCS Policlinico San Donato, San Donato Milanese, Milan, Italy
5Department of Radiology, Humanitas Clinical and Research Center—IRCCS, Rozzano, Milan, Italy
6Department of Biomedical Sciences, Humanitas University, Pieve Emanuele, Milan, Italy
7Department of Oncology, University of Turin, Turin, Italy
8Department of Anesthesia and Critical Care, Azienda Ospedaliero-Universitaria S. Luigi Gonzaga, Orbassano, Italy

Tài liệu tham khảo

Ashbaugh, 1967, Acute respiratory distress in adults, Lancet, 2, 319, 10.1016/S0140-6736(67)90168-7 Gattinoni, 2001, What has computed tomography taught us about the acute respiratory distress syndrome?, Am J Respir Crit Care Med, 164, 1701, 10.1164/ajrccm.164.9.2103121 Gattinoni, 1988, Relationships between lung computed tomographic density, gas exchange, and PEEP in acute respiratory failure, Anesthesiology, 69, 824, 10.1097/00000542-198812000-00005 Gattinoni, 2006, Lung recruitment in patients with the acute respiratory distress syndrome, N Engl J Med, 354, 1775, 10.1056/NEJMoa052052 Gattinoni, 1987, Pressure-volume curve of total respiratory system in acute respiratory failure: computed tomographic scan study, Am Rev Respir Dis, 136, 730, 10.1164/ajrccm/136.3.730 Caironi, 2007, How to monitor lung recruitment in patients with acute lung injury, Curr Opin Crit Care, 13, 338, 10.1097/MCC.0b013e32814db80c Dantzker, 1980, Depression of cardiac output is a mechanism of shunt reduction in the therapy of acute respiratory failure, Chest, 77, 636, 10.1378/chest.77.5.636 Briel, 2010, Higher vs lower positive end-expiratory pressure in patients with acute lung injury and acute respiratory distress syndrome: systematic review and meta-analysis, JAMA, 303, 865, 10.1001/jama.2010.218 Amato, 2015, Driving pressure and survival in the acute respiratory distress syndrome, N Engl J Med, 372, 747, 10.1056/NEJMsa1410639 Fan, 2017, An official American Thoracic Society/European Society of Intensive Care Medicine/Society of Critical Care Medicine clinical practice guideline: mechanical ventilation in adult patients with acute respiratory distress syndrome, Am J Respir Crit Care Med, 195, 1253, 10.1164/rccm.201703-0548ST Alhazzani, 2020, Surviving Sepsis Campaign: guidelines on the management of critically ill adults with coronavirus disease 2019 (COVID-19), Intensive Care Med, 46, 854, 10.1007/s00134-020-06022-5 Chauvelot, 2020, Quantitative-analysis of computed tomography in COVID-19 and non COVID-19 ARDS patients: a case-control study, J Crit Care, 60, 169, 10.1016/j.jcrc.2020.08.006 Chiumello, 2020, Physiological and quantitative CT-scan characterization of COVID-19 and typical ARDS: a matched cohort study, Intensive Care Med, 46, 2187, 10.1007/s00134-020-06281-2 Ball, 2021, Computed tomography assessment of PEEP-induced alveolar recruitment in patients with severe COVID-19 pneumonia, Crit Care, 25, 81, 10.1186/s13054-021-03477-w Beloncle, 2020, Recruitability and effect of PEEP in SARS-Cov-2-associated acute respiratory distress syndrome, Ann Intensive Care, 10, 55, 10.1186/s13613-020-00675-7 Grieco, 2020, Respiratory physiology of COVID-19-induced respiratory failure compared to ARDS of other etiologies, Crit Care, 24, 529, 10.1186/s13054-020-03253-2 Mauri, 2020, Potential for lung recruitment and ventilation-perfusion mismatch in patients with the acute respiratory distress syndrome from coronavirus disease 2019, Crit Care Med, 48, 1129, 10.1097/CCM.0000000000004386 Pan, 2020, Lung recruitability in COVID-19-associated acute respiratory distress syndrome: a single-center observational study, Am J Respir Crit Care Med, 201, 1294, 10.1164/rccm.202003-0527LE Perier, 2020, Effect of positive end-expiratory pressure and proning on ventilation and perfusion in COVID-19 acute respiratory distress syndrome, Am J Respir Crit Care Med, 202, 1713, 10.1164/rccm.202008-3058LE Grasso, 2020, Effects of positive end-expiratory pressure in “high compliance” severe acute respiratory syndrome coronavirus 2 acute respiratory distress syndrome, Crit Care Med, 48, e1332, 10.1097/CCM.0000000000004640 Grasselli, 2020, Pathophysiology of COVID-19-associated acute respiratory distress syndrome: a multicentre prospective observational study, Lancet Respir Med, 8, 1201, 10.1016/S2213-2600(20)30370-2 Herrmann, 2020, Modeling lung perfusion abnormalities to explain early COVID-19 hypoxemia, Nat Commun, 11, 4883, 10.1038/s41467-020-18672-6 Patel, 2020, Pulmonary angiopathy in severe COVID-19: physiologic, imaging, and hematologic observations, Am J Respir Crit Care Med, 202, 690, 10.1164/rccm.202004-1412OC Ranieri, 2012, Acute respiratory distress syndrome: the Berlin Definition, JAMA, 307, 2526 Cressoni, 2013, Limits of normality of quantitative thoracic CT analysis, Crit Care, 17, R93, 10.1186/cc12738 Puybasset, 2000, Regional distribution of gas and tissue in acute respiratory distress syndrome. III. Consequences for the effects of positive end-expiratory pressure. CT Scan ARDS Study Group. Adult Respiratory Distress Syndrome, Intensive Care Med, 26, 1215, 10.1007/s001340051340 Nieszkowska, 2004, Incidence and regional distribution of lung overinflation during mechanical ventilation with positive end-expiratory pressure, Crit Care Med, 32, 1496, 10.1097/01.CCM.0000130170.88512.07 Coppola, 2019, Respiratory mechanics, lung recruitability, and gas exchange in pulmonary and extrapulmonary acute respiratory distress syndrome, Crit Care Med, 47, 792, 10.1097/CCM.0000000000003715 Pelosi, 1994, Vertical gradient of regional lung inflation in adult respiratory distress syndrome, Am J Respir Crit Care Med, 149, 8, 10.1164/ajrccm.149.1.8111603 Haudebourg, 2020, Respiratory mechanics of COVID-19- versus non-COVID-19-associated acute respiratory distress syndrome, Am J Respir Crit Care Med, 202, 287, 10.1164/rccm.202004-1226LE Smit, 2021, Assessment of lung reaeration at 2 levels of positive end-expiratory pressure in patients with early and late COVID-19-related acute respiratory distress syndrome, J Thorac Imaging, 36, 286, 10.1097/RTI.0000000000000600 Kummer, 2021, Paradoxically improved respiratory compliance with abdominal compression in COVID-19 ARDS, Chest, 160, 1739, 10.1016/j.chest.2021.05.012 Rezoagli, 2021, Paradoxical effect of chest wall compression on respiratory system compliance: a multicenter case series of patients with ARDS, with multimodal assessment, Chest, 160, 1335, 10.1016/j.chest.2021.05.057 Dambrosio, 1997, Effects of positive end-expiratory pressure and different tidal volumes on alveolar recruitment and hyperinflation, Anesthesiology, 87, 495, 10.1097/00000542-199709000-00007 Rouby, 2002, Selecting the right level of positive end-expiratory pressure in patients with acute respiratory distress syndrome, Am J Respir Crit Care Med, 165, 1182, 10.1164/ajrccm.165.8.2105122 Crotti, 2001, Recruitment and derecruitment during acute respiratory failure: a clinical study, Am J Respir Crit Care Med, 164, 131, 10.1164/ajrccm.164.1.2007011 Cressoni, 2014, Lung inhomogeneity in patients with acute respiratory distress syndrome, Am J Respir Crit Care Med, 189, 149, 10.1164/rccm.201308-1567OC Terragni, 2007, Tidal hyperinflation during low tidal volume ventilation in acute respiratory distress syndrome, Am J Respir Crit Care Med, 175, 160, 10.1164/rccm.200607-915OC Jonson, 1999, Pressure-volume curves and compliance in acute lung injury: evidence of recruitment above the lower inflection point, Am J Respir Crit Care Med, 159, 1172, 10.1164/ajrccm.159.4.9801088 Chen, 2020, Potential for lung recruitment estimated by the recruitment-to-inflation ratio in acute respiratory distress syndrome: a clinical trial, Am J Respir Crit Care Med, 201, 178, 10.1164/rccm.201902-0334OC Chiumello, 2016, Lung recruitment assessed by respiratory mechanics and computed tomography in patients with acute respiratory distress syndrome: what is the relationship?, Am J Respir Crit Care Med, 193, 1254, 10.1164/rccm.201507-1413OC Amato, 2016, The recruitability paradox, Am J Respir Crit Care Med, 193, 1192, 10.1164/rccm.201601-0178ED Cressoni, 2014, Compressive forces and computed tomography-derived positive end-expiratory pressure in acute respiratory distress syndrome, Anesthesiology, 121, 572, 10.1097/ALN.0000000000000373 Gattinoni, 1993, Regional effects and mechanism of positive end-expiratory pressure in early adult respiratory distress syndrome, JAMA, 269, 2122, 10.1001/jama.1993.03500160092039 Gattinoni, 1995, Effects of positive end-expiratory pressure on regional distribution of tidal volume and recruitment in adult respiratory distress syndrome, Am J Respir Crit Care Med, 151, 1807, 10.1164/ajrccm.151.6.7767524 Protti, 2021, Barotrauma in mechanically ventilated patients with Coronavirus disease 2019: a survey of 38 hospitals in Lombardy, Italy, Minerva Anestesiol, 87, 193, 10.23736/S0375-9393.20.15002-8 Shi, 2020, Radiological findings from 81 patients with COVID-19 pneumonia in Wuhan, China: a descriptive study, Lancet Infect Dis, 20, 425, 10.1016/S1473-3099(20)30086-4 Grasselli, 2020, Risk factors associated with mortality among patients with COVID-19 in intensive care units in Lombardy, Italy, JAMA Intern Med, 180, 1345, 10.1001/jamainternmed.2020.3539