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Published on: January 17, 2011
Factors Associated with Survival during High-Frequency Oscillatory Ventilation in Children
Shekhar S Raj1, James E Slaven2, Mark R Rigby1
1Pediatric Critical Care Medicine, Department of Pediatrics, Indiana University School of Medicine and Riley Hospital for Children at Indiana University Health, Indianapolis, Indiana, United States.
Insights
High-frequency oscillatory ventilation (HFOV) improves oxygenation in children with severe hypoxic respiratory failure (HRF). Key survival indicators emerge 24-36 hours into HFOV, including lower oxygenation index and metabolic acidosis.
Area of Science:
- Pediatric Critical Care Medicine
- Respiratory Physiology
- Mechanical Ventilation
Background:
- Severe hypoxic respiratory failure (HRF) in children presents significant management challenges.
- High-frequency oscillatory ventilation (HFOV) is a specialized mode of mechanical ventilation used for severe respiratory distress.
- Identifying early indicators of survival is crucial for optimizing treatment strategies in pediatric HRF.
Purpose of the Study:
- To identify predictors of survival in pediatric patients with severe HRF.
- To evaluate physiological and ventilator parameters during HFOV that differentiate survivors from nonsurvivors.
- To establish potential timing for prognostication and consideration of advanced therapies.
Main Methods:
- Retrospective analysis of 62 children with severe HRF transitioned to HFOV at a single center.
- Comparison of blood gas values and ventilator settings at 24 hours pre-HFOV and 48 hours post-HFOV between survivors and nonsurvivors.
- Evaluation of oxygenation index (OI), P/F ratio, pH, bicarbonate, and CO2 levels.
Main Results:
- Initial parameters pre-HFOV were similar between survivors and nonsurvivors.
- Survivors demonstrated a significantly lower OI (p < 0.01) and a P/F ratio >200 by 36 hours of HFOV.
- Survivors exhibited higher pH (p < 0.05) and bicarbonate levels at 36 hours, indicating less severe metabolic acidosis.
Conclusions:
- HFOV effectively improves oxygenation in children with severe HRF.
- Higher oxygenation index, metabolic acidosis, and increased oscillatory support during HFOV are associated with nonsurvival.
- These findings can aid in early prognostication and guide decisions regarding alternative treatments like ECMO.
Abstract:
Our aim is to determine indicators of survival in children with severe hypoxic respiratory failure (HRF) after transition to high-frequency oscillatory ventilation (HFOV). Single-center retrospective examination of children with HRF transitioned to HFOV. Blood gases and ventilator settings 24 hours prior to and 48 hours after HFOV in survivors and nonsurvivors were evaluated. Sixty-two children with mean age of 7 years and mean weight of 26 kg were included with an observed mortality of 29%. Mean airway pressures (Paw), oxygenation index (OI), arterial oxygen partial pressure (PaO2)/fraction of inspired oxygen (FiO2) (P/F) ratio, pH, bicarbonate, and arterial carbon dioxide partial pressure were similar prior to HFOV in survivors and nonsurvivors. During HFOV, mean OI and P/F ratio improved in both groups with an average Paw increase of ∼10 cm H2O. Survivors had lower OI than nonsurvivors (21 ± 0.9 vs. 26.5 ± 2.2; p < 0.01) beginning 24 hours after HFOV. P/F ratio appears to diverge by 36 hours, with survivors having P/F ratio >200. Survivors had higher pH than nonsurvivors at 36 hours (7.40 ± 0.01 vs. 7.32 ± 0.02; p < 0.05), higher bicarbonate levels (27.1 ± 0.7 vs. 23.9 ± 1.3 mEq/L), and similar arterial carbon dioxide partial pressure with less oscillatory support (i.e., hertz and amplitude). Inhaled nitric oxide was used in 53% of patients with improvements in oxygenation but with no effect on mortality. HFOV improves oxygenation in children with severe HRF. Nonsurvivors can be distinguished from survivors at 24 to 36 hours during HFOV by higher OI, metabolic acidosis, and higher oscillatory support. These data may assist in prognostication or timing of initiating alternative therapies, such as extracorporeal membrane oxygenation.
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