Radiation risk index for pediatric CT: a patient-derived metric
Ehsan Samei1,2,3, Xiaoyu Tian1, W Paul Segars1,3
1Department of Radiology, Carl E. Ravin Advanced Imaging Laboratories, Duke University Medical Center, Durham, NC, USA.
Insights
A new radiation risk index for pediatric CT scans combines organ dose, patient age, size, and gender. This metric helps assess whole-body radiation burden and improve individualized risk communication.
Area of Science:
- Medical Imaging
- Radiation Oncology
- Pediatric Radiology
Background:
- Characterizing radiation-induced cancer risk in pediatric CT is crucial.
- A unified metric for whole-body radiation burden, considering age, gender, and organ sensitivity, is needed.
Purpose of the Study:
- To compute a comprehensive radiation risk index for pediatric chest and abdominopelvic CT examinations.
- To develop a strategy for better characterizing individualized radiation risk.
Main Methods:
- Virtual whole-body anatomical models of 42 pediatric patients (0-16 years) were created.
- Organ doses were estimated using Monte Carlo simulations for chest and abdominopelvic CT.
- Normalized effective dose (k factor) and risk index (q factor) were calculated using age-, size-, and gender-specific coefficients.
Main Results:
- The k factor showed an exponential correlation with average patient diameter.
- The q factor demonstrated an exponential relationship with average patient diameter and patient age for both genders.
- Differences between scanner models were minimal (<8%).
Conclusions:
- A whole-body radiation risk index for pediatric CT was defined, integrating organ dose, sensitivity, patient size, age, and gender.
- This index allows for assessment and potential improvement of CT performance and informed communication.
- The metrology supports surveillance of practice dose profiles for better risk management.
Background:
There is a benefit in characterizing radiation-induced cancer risk in pediatric chest and abdominopelvic CT: a singular metric that represents the whole-body radiation burden while also accounting for age, gender and organ sensitivity.
Objective:
To compute an index of radiation risk for pediatric chest and abdominopelvic CT.
Materials And Methods:
Using a protocol approved by our institutional review board, 42 pediatric patients (age: 0-16 years, weight: 2-80 kg) were modeled into virtual whole-body anatomical models. Organ doses were estimated for clinical chest and abdominopelvic CT examinations of the patients using validated Monte Carlo simulations of two major scanner models. Using age-, size- and gender-specific organ risk coefficients, the values were converted to normalized effective dose (by dose length product) (denoted as the k factor) and a normalized risk index (denoted as the q factor). An analysis was performed to determine how these factors are correlated with patient age and size for both males and females to provide a strategy to better characterize individualized risk.
Results:
The k factor was found to be exponentially correlated with the average patient diameter. For both genders, the q factor also exhibited an exponential relationship with both the average patient diameter and with patient age. For both factors, the differences between the scanner models were less than 8%.
Conclusion:
The study defines a whole-body radiation risk index for chest and abdominopelvic CT imaging, that incorporates individual estimated organ dose values, organ radiation sensitivity, patient size, exposure age and patient gender. This indexing metrology enables the assessment and potential improvement of chest and abdominopelvic CT performance through surveillance of practice dose profiles across patients and may afford improved informed communication.
More Related Videos
09:49A Whole Body Dosimetry Protocol for Peptide-Receptor Radionuclide Therapy PRRT: 2D Planar Image and Hybrid 2D+3D SPECT/CT Image Methods
Published on: April 24, 2020
05:39Author Spotlight: Radiotherapy and Clonogenic Assays for Advancing Cancer Research and Personalized Medicine
Published on: April 5, 2024
Related Concept Videos
Biological Effects of Radiation
Radiological Investigation I: X-ray and CT
Computed Tomography
The technique was invented in the 1970s and is based on the principle that as X-rays pass through the body, they are absorbed or reflected at different levels. In the technique, a patient lies on a motorized platform while a computerized axial tomography (CAT) scanner rotates...
Relative Risk
