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Myocardial Oxidative Stress in Infants Undergoing Cardiac Surgery
Nathaniel Sznycer-Taub1,2, Stewart Mackie3, Yun-Wen Peng4
1Division of Pediatric Cardiology, Department of Pediatrics and Communicable Disease, University of Michigan, Ann Arbor, MI, USA. nsznycer@med.umich.edu.
Insights
Infant cardiac surgery causes rapid, sustained myocardial oxidative stress after aortic cross-clamp removal. This study measured key biomarkers in infants undergoing VSD or TOF repair.
Area of Science:
- Cardiology
- Biochemistry
- Pediatric Surgery
Background:
- Cardiac surgery for congenital heart disease involves ischemia-reperfusion injury.
- Myocardial ischemia-reperfusion is linked to oxidative stress and ventricular dysfunction in experimental models.
Purpose of the Study:
- To prospectively investigate myocardial oxidative stress in infants undergoing cardiac surgery.
- To assess the time course of oxidative stress markers in the coronary sinus following reperfusion.
Main Methods:
- Prospective observational study in infants (<1 year) undergoing VSD or TOF repair.
- Coronary sinus blood samples collected at baseline and 1, 3, 5, 10 min post-reperfusion.
- Assays for thiobarbituric acid-reactive substances, protein carbonyl, 8-isoprostane, and total antioxidant capacity.
Main Results:
- Sixteen infants (10 TOF, 6 VSD) enrolled; no major complications.
- Significant, rapid increase in myocardial oxidative stress markers observed within 10 minutes of reperfusion (P < 0.01).
- Total antioxidant capacity did not show a significant change.
Conclusions:
- Infant cardiac surgery induces a rapid and sustained increase in myocardial oxidative stress.
- Findings highlight the acute impact of ischemia-reperfusion on the infant myocardium.
- Further research with larger cohorts is needed to correlate oxidative stress with outcomes.
Abstract:
Cardiac surgery for congenital heart disease often necessitates a period of myocardial ischemia during cardiopulmonary bypass and cardioplegic arrest, followed by reperfusion after aortic cross-clamp removal. In experimental models, myocardial ischemia-reperfusion is associated with significant oxidative stress and ventricular dysfunction. A prospective observational study was conducted in infants (<1 year) who underwent elective surgical repair of a ventricular septal defect (VSD) or tetralogy of Fallot (TOF). Blood samples were drawn following anesthetic induction (baseline) and directly from the coronary sinus at 1, 3, 5, and 10 min following aortic cross-clamp removal. Samples were analyzed for oxidant stress using assays for thiobarbituric acid-reactive substances, protein carbonyl, 8-isoprostane, and total antioxidant capacity. For each subject, raw assay data were normalized to individual baseline samples and expressed as fold-change from baseline. Results were compared using a one-sample t test with Bonferroni correction for multiple comparisons. Sixteen patients (ten with TOF and six with VSD) were enrolled in the study, and there were no major postoperative complications observed. For the entire cohort, there was an immediate, rapid increase in myocardial oxidative stress that was sustained for 10 min following aortic cross-clamp removal in all biomarker assays (all P < 0.01), except total antioxidant capacity. Infant cardiac surgery is associated with a rapid, robust, and time-dependent increase in myocardial oxidant stress as measured from the coronary sinus in vivo. Future studies with larger enrollment are necessary to assess any association between myocardial oxidative stress and early postoperative outcomes.
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