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Updated: Jun 29, 2025

Surfactant Depletion Combined with Injurious Ventilation Results in a Reproducible Model of the Acute Respiratory Distress Syndrome ARDS
Published on: April 7, 2021
Inflammatory and tissue injury marker dynamics in pediatric acute respiratory distress syndrome
Nadir Yehya1,2, Thomas J Booth1, Gnana D Ardhanari3
1Division of Pediatric Critical Care, Department of Anesthesiology and Critical Care Medicine, Children's Hospital of Philadelphia and.
Insights
Pediatric acute respiratory distress syndrome (ARDS) shows distinct molecular patterns in survivors versus nonsurvivors. Key biomarkers indicate hyperinflammation and tissue injury, with specific markers linked to mortality and organ dysfunction.
Area of Science:
- Pediatric critical care medicine
- Pulmonology
- Molecular biology
Background:
- The molecular underpinnings of pediatric acute respiratory distress syndrome (ARDS) remain poorly understood.
- The roles of hyperinflammation and tissue injury in ARDS outcomes are unclear.
Purpose of the Study:
- To profile inflammation and tissue injury biomarkers in pediatric ARDS over 7 days.
- To associate specific biomarkers with mortality, persistent ARDS, and persistent multiple organ dysfunction syndrome (MODS).
Main Methods:
- Prospective cohort study of 279 intubated pediatric ARDS patients.
- Plasma collection on days 0, 3, and 7.
- Measurement of 19 biomarkers (inflammation, tissue injury, DAMPs) and analysis using multivariable mixed-effects models.
Main Results:
- Nonsurvivors exhibited higher levels of hyperinflammatory cytokines, tissue injury markers, and DAMPs compared to survivors.
- Distinct biomarker trajectories were observed between survivors and nonsurvivors.
- Specific biomarkers like ANG2 and procollagen type III N-terminal peptide were associated with persistent ARDS, while others linked to persistent MODS.
Conclusions:
- Pediatric ARDS survivors and nonsurvivors display divergent biomarker trajectories.
- Cytokines, endothelial/alveolar epithelial injury, and DAMPs are elevated in nonsurvivors.
- Biomarkers associated with mortality overlapped with those linked to persistent MODS, not persistent ARDS.
Abstract:
BACKGROUNDThe molecular signature of pediatric acute respiratory distress syndrome (ARDS) is poorly described, and the degree to which hyperinflammation or specific tissue injury contributes to outcomes is unknown. Therefore, we profiled inflammation and tissue injury dynamics over the first 7 days of ARDS, and associated specific biomarkers with mortality, persistent ARDS, and persistent multiple organ dysfunction syndrome (MODS).METHODSIn a single-center prospective cohort of intubated pediatric patients with ARDS, we collected plasma on days 0, 3, and 7. Nineteen biomarkers reflecting inflammation, tissue injury, and damage-associated molecular patterns (DAMPs) were measured. We assessed the relationship between biomarkers and trajectories with mortality, persistent ARDS, or persistent MODS using multivariable mixed effect models.RESULTSIn 279 patients (64 [23%] nonsurvivors), hyperinflammatory cytokines, tissue injury markers, and DAMPs were higher in nonsurvivors. Survivors and nonsurvivors showed different biomarker trajectories. IL-1α, soluble tumor necrosis factor receptor 1, angiopoietin 2 (ANG2), and surfactant protein D increased in nonsurvivors, while DAMPs remained persistently elevated. ANG2 and procollagen type III N-terminal peptide were associated with persistent ARDS, whereas multiple cytokines, tissue injury markers, and DAMPs were associated with persistent MODS. Corticosteroid use did not impact the association of biomarker levels or trajectory with mortality.CONCLUSIONSPediatric ARDS survivors and nonsurvivors had distinct biomarker trajectories, with cytokines, endothelial and alveolar epithelial injury, and DAMPs elevated in nonsurvivors. Mortality markers overlapped with markers associated with persistent MODS, rather than persistent ARDS.FUNDINGNIH (K23HL-136688, R01-HL148054).
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