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Recovery of cefazolin and clindamycin in in vitro pediatric CPB systems
Gerdien A Zeilmaker-Roest1,2, Annewil van Saet3, Marloes P J van Hoeven1
1Department of Cardio-Thoracic Surgery, Erasmus University Medical Center, Rotterdam, The Netherlands.
Insights
Pediatric cardiopulmonary bypass (CPB) systems significantly affect cefazolin and clindamycin levels. Neonatal and infant CPB systems showed high cefazolin recovery, while all systems had discrepancies in clindamycin concentrations.
Area of Science:
- Pharmacology
- Pediatric Surgery
- Biomedical Engineering
Background:
- Cardiopulmonary bypass (CPB) is essential for congenital cardiac surgery but can alter drug pharmacokinetics.
- Suboptimal antibiotic levels during CPB may increase the risk of postoperative infections.
- The impact of pediatric CPB systems on cefazolin and clindamycin levels is not well understood.
Purpose of the Study:
- To investigate the in vitro recovery of cefazolin and clindamycin in different pediatric cardiopulmonary bypass systems.
- To determine if CPB system type and duration influence antibiotic plasma levels.
Main Methods:
- Three types of pediatric CPB systems were tested in vitro.
- Systems were primed and spiked with cefazolin and clindamycin.
- Antibiotic concentrations were measured at various time points using linear mixed-effects models.
Main Results:
- Significant differences in cefazolin and clindamycin recovery were observed across CPB systems and time points (P < .001).
- Cefazolin recovery at 180 minutes ranged from 77% (pediatric) to 106% (neonatal).
- Clindamycin recovery at 180 minutes varied (77%-143%), with significant discrepancies between theoretical and measured concentrations across all systems.
Conclusions:
- Pediatric CPB systems influence cefazolin and clindamycin recovery, with notable differences based on system type and duration.
- Neonatal and infant CPB systems generally maintained higher cefazolin levels compared to pediatric systems.
- A significant underestimation of clindamycin concentrations suggests potential for underdosing in clinical settings.
Abstract:
Cardiopulmonary bypass (CPB) is often necessary for congenital cardiac surgery, but CPB can alter drug pharmacokinetic parameters resulting in underdosing. Inadequate plasma levels of antibiotics could lead to postoperative infections with increased morbidity. The influence of pediatric CPB systems on cefazolin and clindamycin plasma levels is not known. We have measured plasma levels of cefazolin and clindamycin in in vitro pediatric CPB systems. We have tested three types of CPB systems. All systems were primed and spiked with clindamycin and cefazolin. Samples were taken at different time points to measure the recovery of cefazolin and clindamycin. Linear mixed model analyses were performed to assess if drug recovery was different between the type of CPB system and sampling time point. The experiments were conducted at a tertiary university hospital. 81 samples were analyzed. There was a significant difference in the recovery over time between CPB systems for cefazolin and clindamycin (P < .001). Cefazolin recovery after 180 minutes was 106% (95% CI: 91-123) for neonatal, 99% (95% CI: 85-115) for infant, and 77% (95% CI: 67-89) for pediatric systems. Clindamycin recovery after 180 minutes was 143% (95% CI: 116-177) for neonatal, 111% (95% CI: 89-137) for infant, and 120% (95% CI: 97-149) for pediatric systems. Clindamycin recovery after 180 minutes compared to the theoretical concentration was 0.4% for neonatal, 1.2% for infants, and 0.6% for pediatric systems. The recovery of cefazolin was high in the neonatal and infant CPB systems and moderate in the pediatric system. We found a large discrepancy between the theoretical and measured concentrations of clindamycin in all tested CPB systems.
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