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Irradiator Commissioning and Dosimetry for Assessment of LQ α and β Parameters, Radiation Dosing Schema, and in vivo Dose Deposition
Published on: March 11, 2021
Reducing radiation dose in paediatric interventional cardiac catheterisation
Jiarong Bai1, Feng Wang1, Haosheng Yang2
1Department of Cardiology, Cardiovascular Center, Children's Hospital of Fudan University, Shanghai 201102, P.R. China.
Insights
A new radiation safety protocol significantly reduced patient radiation dose during pediatric cardiac catheterization. This protocol achieved dose reductions of 46-74% for common procedures, enhancing radiation protection for children.
Area of Science:
- Pediatric Cardiology
- Radiology
- Radiation Safety
Background:
- Minimizing radiation exposure is crucial in pediatric cardiac catheterization.
- Current protocols aim for
Purpose of the Study:
- To evaluate a modified radiation safety protocol's effectiveness in reducing patient radiation dose.
- To assess dose reduction across common pediatric interventional cardiac catheterization procedures.
Main Methods:
- Retrospective (Standard group, 2014-2015) and prospective (Low-dose group, 2016-2017) data collection.
- Analysis of radiation dose for five common procedures: ASD closure, PDA closure, VSD closure, pulmonary valvuloplasty, and SVT ablation.
Main Results:
- The Low-dose group showed significant reductions in median air Kerma for all procedures (46-74% decrease).
- Ventricular septal defect closure had the highest dose in the Low-dose group, with the longest fluoroscopy time.
Conclusions:
- A feasible, case-by-case radiation safety protocol was developed.
- Increased awareness and training are essential for effective radiation protection in pediatric cardiac procedures.
Objective:
Radiation exposure during paediatric cardiac catheterisation procedures should be minimised to "as low as reasonably achievable". The aim of this study was to evaluate the effectiveness of a modified radiation safety protocol in reducing patient dose during paediatric interventional cardiac catheterisation.
Methods:
Radiation dose data were retrospectively extracted from January 2014 to December 2015 (Standard group) and prospectively collected from January 2016 to December 2017 (Low-dose group) after implementation of a modified radiation safety protocol. Both groups included five most common procedures: atrial septal defect closure, patent ductus arteriosus closure, perimembranous ventricular septal defect closure, pulmonary valvuloplasty, and supraventricular tachycardia ablation.
Results:
Median air Kerma was 48.4, 50.5, 29.75, 149, 218, and 12.9 mGy for atrial septal defect closure, pulmonary valvuloplasty, patent ductus arteriosus closure <20 kg, ventricular septal defect closure <20 kg, ventricular septal defect closure ≧20 kg, and supraventricular tachycardia ablation in Standard group, respectively, which significantly decreased to 18.75, 20.7, 11.5, 41.9, 117, and 3.3 mGy in Low-dose group (p < 0.05). This represents a reduction in dose to each patient between 46 and 74%. Among five procedural types in Low-dose group, dose of ventricular septal defect closure was the highest with median air Kerma of 62.5 mGy, dose area product of 364.7 μGy.m2, and dose area product per body weight of 21.5 μGy.m2/kg, respectively, along with the longest fluoroscopy time of 9.9 minutes.
Conclusion:
We provided a feasible radiation safety protocol with specific settings on a case-by-case basis. Increasing awareness and adequate training of a practical radiation dose reduction program are essential to improve radiation protection for children.
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