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Published on: November 23, 2012
Estimated radiation dose to the newborn in FDG-PET studies
U Ruotsalainen1, H Suhonen-Polvi, E Eronen
1Turku University Cyclotron/PET Center, Finland.
Insights
This study estimated radiation doses for infants undergoing PET scans with 2-[18F]fluoro-2-deoxy-D-glucose (FDG). The effective dose was lower than in adults, making PET a valuable tool in pediatric nuclear medicine.
Area of Science:
- Nuclear Medicine
- Pediatric Imaging
- Radiation Dosimetry
Background:
- Positron Emission Tomography (PET) is crucial for pediatric diagnostics.
- Accurate radiation dose estimation is vital for safe infant imaging.
Purpose of the Study:
- To quantify the radiation dose from intravenous 2-[18F]fluoro-2-deoxy-D-glucose (FDG) in infants undergoing PET scans.
- To compare infant radiation doses with established adult values.
Main Methods:
- Measured radioactivity in infant brain and bladder using PET to determine cumulated activity.
- Calculated organ-specific absorbed doses (S values) based on organ masses.
- Extrapolated cumulated activity for other organs from adult studies.
- Estimated effective dose for pediatric FDG-PET procedures.
Main Results:
- Infant FDG distribution showed higher brain uptake (9%) and lower urinary excretion (7%) compared to adults.
- Absorbed doses were 0.24 mGy/MBq to the brain and 1.03 mGy/MBq to the bladder wall.
- The estimated effective dose was 0.43 mSv/MBq, lower than in adults.
Conclusions:
- Infant bladder wall radiation dose is lower than in adults.
- Higher retained activity in infants may increase dose to other organs.
- The effective dose in infants is lower than in adults and conventional pediatric nuclear medicine studies.
- PET imaging is a valuable tool for pediatric nuclear medicine due to its resolution, sensitivity, and tracer availability.
Unlabelled:
The aim of this study was to estimate the radiation dose due to intravenous injection of 2-[18F]fluoro-2-deoxy-D-glucose (FDG) for infants studied with PET.
Methods:
The radioactivity concentration in the brain and bladder content was measured with PET to determine the cumulated activity in these organs in 21 infant FDG studies. The individual organ masses were estimated according to the whole-body and brain masses, and they were used to calculate the absorbed dose per unit cumulated activity (S values). For organs other than brain and bladder, the cumulated activity was defined from adult studies. For each individual patient, the absorbed dose to the brain, bladder wall and selected organs were calculated. An estimation of the effective dose was determined.
Results:
Whole-body distribution of FDG in the infants differed from adults: a greater proportion of the injected activity accumulated into the brain (9% versus 7%) and less was excreted to urine (7% versus 20% respectively). The measured cumulated activity in the brain was 0.25 MBq.h/MBq and in the bladder content 0.04 MBq.h/MBq with a large individual variation in latter. The calculated absorbed dose was 0.24 mGy/MBq to the brain and 1.03 mGy/MBq to the bladder wall. The estimated effective dose was 0.43 mSv/MBq.
Conclusion:
The dose to the bladder wall was lower in infants as compared to adults with ordinary amounts of injected activity. The greater amount of activity remaining in the body may increase the dose to other organs. The effective dose was lower compared to adults and conventional nuclear medicine studies of infants. PET can be a valuable tool in pediatric nuclear medicine because of good resolution images, sensitive radiation measurement and a variety of tracers labeled with short-lived isotopes.
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