Related Experiment Video
Updated: Nov 2, 2025

Author Spotlight: Establishment and Confirmation of a Postnatal Right Ventricular Volume Overload Mouse Model
Published on: June 9, 2023
High-Frequency Jet Ventilation in Infants With Congenital Heart Disease
Andrew G Miller1, Briana L Scott2, Rachel M Gates3
1Respiratory Care Services, Duke University Medical Center, Durham, North Carolina. Andrew.g.miller@duke.edu.
Insights
High-frequency jet ventilation (HFJV) improved blood gas exchange in infants with congenital heart disease and respiratory failure. This study found increased pH and decreased carbon dioxide levels after HFJV initiation.
Area of Science:
- Pediatric Critical Care Medicine
- Respiratory Physiology
- Cardiology
Background:
- High-frequency jet ventilation (HFJV) is used in neonates and may benefit infants with congenital heart disease (CHD) and severe respiratory failure.
- Limited data exists on HFJV's efficacy in this specific pediatric population.
Purpose of the Study:
- To evaluate the impact of HFJV on gas exchange in infants with complex CHD and respiratory failure.
- To assess whether HFJV improves oxygenation and ventilation compared to conventional mechanical ventilation.
Main Methods:
- Retrospective review of pediatric patients with complex CHD treated with HFJV (2014-2018), excluding those on extracorporeal membrane oxygenation (ECMO).
- Data collected included demographics, pulmonary mechanics, gas exchange, need for ECMO, inhaled nitric oxide use, and outcomes.
- Compared pre-HFJV and 4-6 hour post-HFJV blood gas parameters.
Main Results:
- 27 infants with complex CHD (82% cyanotic) received HFJV.
- Median pre-HFJV pH was 7.22, PaCO2 was 69 mm Hg, and PaO2 was 51 mm Hg.
- Within 4-6 hours of HFJV initiation, significant improvements were observed in median pH (7.22 to 7.34) and PaCO2 (69 to 50 mm Hg; P=.001). No significant change in PaO2 (P=.97).
Conclusions:
- HFJV was associated with improved pH and reduced PaCO2 in infants with CHD and respiratory failure.
- These findings suggest HFJV can be a beneficial ventilation strategy for this high-risk group.
- Further prospective studies are warranted to confirm these outcomes.
Background:
High-frequency jet ventilation (HFJV) is primarily used in neonates but may also have a role in the treatment of infants with congenital heart disease and severe respiratory failure. We hypothesized that HFJV would result in improved gas exchange in these infants.
Methods:
We retrospectively reviewed the records of all pediatric patients with complex congenital heart disease treated HFJV in our pediatric cardiac ICU between 2014 and 2018. Patients in whom HFJV was started while on extracorporeal membrane oxygenation (ECMO) were excluded. We extracted data on demographics, pulmonary mechanics, gas exchange, the subsequent need for ECMO, use of inhaled nitric oxide, and outcomes.
Results:
We included 27 subjects (median [interquartile range {IQR}] weight 4.4 [3.3-5.4] kg; median [IQR] age 2.5 [0.3-5.4] months), 22 (82%) of whom had cyanotic heart disease. Thirteen subjects (48%) survived and 6 (22%) required ECMO. HFJV was started after a median (IQR) of 8.4 (2.1-26.3) d of conventional mechanical ventilation. The subjects spent a median (IQR) of 1.2 (0.5-2.8) d on HFJV. The median (IQR) pre-HFJV blood gas results (n = 25) were pH 7.22 (7.17-7.31), [Formula: see text] 69 (51-77) mm Hg, and [Formula: see text] 51 (41-76) mm Hg. Median (IQR) initial HFJV settings were peak inspiratory pressure of 45 (36-50) cm H2O, breathing frequency of 360 (360-380) breaths/min, and inspiratory time of 0.02 (0.02-0.03) s. Compared with conventional mechanical ventilation, at 4-6 h after HFJV initiation, there were significant improvements in the median pH (7.22 vs 7.34; P = .001) and [Formula: see text] (69 vs 50 mm Hg; P = .001), respectively, but no difference in median [Formula: see text] (51 vs 53 mm Hg; P = .97).
Conclusions:
HFJV was associated with a decrease in [Formula: see text] and an increase in pH in infants with congenital heart disease who remained on HFJV 4 to 6 h after initiation.
More Related Videos
Related Concept Videos
Mechanical Ventilation II: Invasive Ventilation
Negative-Pressure Ventilators
Negative-pressure ventilators create a vacuum around the chest or body to draw air into the lungs, simulating breathing. This method does not require an...
Mechanical Ventilation III: Noninvasive Ventilation
Noninvasive Positive-Pressure Ventilation...
Mechanical Ventilation I: Indication and Settings
Ventilatory Modes
There are three ventilatory modes: full support, partial support, and spontaneous. These are described below.
Full Support Modes
Full support modes include controlled mechanical ventilation, continuous mandatory...
Cardiopulmonary Resuscitation II: ACLS Airway Management
Factors Affecting Pulmonary Ventilation
Alveolar Surface Tension
The alveolar fluid lines the luminal surface of the alveoli and exerts a force called surface tension. This force is caused by the polar water molecules in the liquid being more strongly attracted to each...

