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A Pulmonary Trunk Banding Model of Pressure Overload Induced Right Ventricular Hypertrophy and Failure
Published on: November 29, 2018
Risk Factors of Prolonged Mechanical Ventilation Following Pulmonary Artery Banding in Children With Single Ventricle
Dian Kesumarini1,2, Ratna Farida Soenarto1,3
1Faculty of Medicine Universitas Indonesia, Jakarta, Indonesia.
Insights
Predicting prolonged mechanical ventilation (PMV) in pediatric single ventricle physiology (SVP) patients after pulmonary artery (PA) banding is crucial. A peak right ventricle-pulmonary artery (RV-PA) gradient above 39.5 mm Hg and stable mean arterial pressure (MAP) reduce PMV risk.
Area of Science:
- Pediatric Cardiology
- Cardiothoracic Surgery
- Critical Care Medicine
Background:
- Prolonged mechanical ventilation (PMV) poses a significant postoperative challenge for pediatric patients with single ventricle physiology (SVP) undergoing pulmonary artery (PA) banding.
- Predicting optimal PA band tightness and its impact on PMV is difficult, especially in resource-limited settings due to limited evidence on risk factors.
Purpose of the Study:
- To identify perioperative risk factors associated with prolonged mechanical ventilation (PMV) following pulmonary artery (PA) banding in pediatric patients with single ventricle physiology (SVP).
Main Methods:
- Retrospective, single-center cohort study of 101 pediatric patients with SVP who underwent PA banding (2017-2023).
- Binomial logistic regression analysis to assess perioperative risk factors for PMV (>126 hours).
- Secondary outcomes included in-hospital mortality, postoperative complications, and PA rebanding.
Main Results:
- 31.7% of patients experienced PMV.
- A higher peak right ventricle-pulmonary artery (RV-PA) pressure gradient was associated with reduced odds of PMV (OR = 0.894, P = .018).
- An RV-PA gradient > 39.5 mm Hg significantly lowered PMV risk (P = .012), while low postoperative mean arterial pressure (MAP) independently increased PMV risk (P = .038).
Conclusions:
- Peak RV-PA gradient > 39.5 mm Hg and stable postbanding MAP are key factors in reducing PMV risk in pediatric SVP patients undergoing PA banding.
- Incorporating prebanding bodyweight and oxygenation status may decrease postoperative mortality risk.
- Findings provide guidance for integrated perioperative assessment, especially in resource-limited centers.
Abstract:
Introduction: Prolonged mechanical ventilation (PMV) is a postoperative burden in single ventricle physiology (SVP) pediatric patients undergoing pulmonary artery (PA) banding. Predicting the optimal band tightness and its postoperative impact remains challenging, particularly in low- and middle-income countries, as evidence linking risk factors to PMV following PA banding is still limited. This study aimed to identify perioperative risk factors associated with PMV following PA banding in pediatric patients with SVP. Methods: This retrospective, single-center cohort study included 101 children with SVP who underwent PA banding between 2017 and 2023. Binomial logistic regression models were used to examine the association of perioperative risk factors and PMV (>126 h). Secondary outcomes included in-hospital mortality, postoperative complications, and PA rebanding. A P-value of < .05 was considered statistically significant. Results: Prolonged MV occurred in 31.7% (32/101) of patients. A higher peak right ventricle-pulmonary artery (RV-PA) pressure gradient was associated with lower odds of postoperative prolonged MV (OR = 0.894, P = .018). Significantly lower PMV risk was associated with RV-PA gradient values above the cut-off value of 39.5 mm Hg (AUC 0.665, 95% CI 0.538-0.792, P = .012, Youden index 0.387). Nevertheless, abnormally low postoperative mean arterial pressure (MAP) was independently associated with PMV (P = .038). Conclusions: Peak RV-PA gradient > 39.5 mm Hg and stable postbanding MAP help reduce PMV risk in children with SVP undergoing PA banding. Incorporating bodyweight and oxygenation status in prebanding assessment may reduce risk of postoperative mortality. These findings offer guidance for integrated perioperative assessment, particularly in resources-limited centers.
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