Mechanical ventilation energy analysis: Recruitment focuses injurious power in the ventilated lung

D Donald P. Gaver (Department of Biomedical Engineering, Tulane University) M Michaela Kollisch-Singule (Department of Surgery, State University of New York Upstate Medical University) G Gary Nieman (Department of Surgery, State University of New York Upstate Medical University) J Joshua Satalin (Department of Surgery, State University of New York Upstate Medical University) N Nader Habashi (Department of Trauma Critical Care Medicine, R Adams Cowley Shock Trauma Center, University of Maryland Medical Center) J Jason H. T. Bates (Department of Medicine, University of Vermont)

Abstract

The progression of acute respiratory distress syndrome (ARDS) from its onset due to disease or trauma to either recovery or death is poorly understood. Currently, there are no generally accepted treatments aside from supportive care using mechanical ventilation. However, this can lead to ventilator-induced lung injury (VILI), which contributes to a 30 to 40% mortality rate. In this study, we develop and demonstrate a technique to quantify forms of energy transport and dissipation during mechanical ventilation to directly evaluate their relationship to VILI. A porcine ARDS model was used, with ventilation parameters independently controlling lung overdistension and alveolar/airway recruitment/derecruitment (RD). Hourly measurements of airflow, tracheal and esophageal pressures, respiratory system impedance, and oxygen transport were taken for six hours following lung injury to track energy transfer and lung function. The final degree of injury was assessed histologically. Total and dissipated energies were quantified from lung pressure–volume relationships and subdivided into contributions from airflow, tissue viscoelasticity, and RD. Only RD correlated with physiologic recovery. Despite accounting for a very small fraction (2 to 5%) of the total energy dissipation, RD is damaging because it occurs quickly over a very small area. We estimate power intensity of RD energy dissipation to be 100 W/m 2 , equivalent to 10% of the Sun’s luminance at the Earth’s surface. Minimizing repetitive RD events may thus be crucial for mitigating VILI.

Article Details

Volume / Issue Vol. 122, Issue 10
Published March 11, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (6)

D

Donald P. Gaver

Department of Biomedical Engineering, Tulane University

M

Michaela Kollisch-Singule

Department of Surgery, State University of New York Upstate Medical University

G

Gary Nieman

Department of Surgery, State University of New York Upstate Medical University

J

Joshua Satalin

Department of Surgery, State University of New York Upstate Medical University

N

Nader Habashi

Department of Trauma Critical Care Medicine, R Adams Cowley Shock Trauma Center, University of Maryland Medical Center

J

Jason H. T. Bates

Department of Medicine, University of Vermont