Biokinetics, dosimetry, and radiation risk in infants after 99mTc-MAG3 scans

J Soares Machado1, J Tran-Gia2, S Schlögl2

  • 1Department of Nuclear Medicine, University Hospital Würzburg, Oberdürrbacher Str. 6, 97080, Würzburg, Germany. E_Soares_J@ukw.de.

EJNMMI Research
|February 4, 2018
PubMed

Insights

This study reassessed radiation dosimetry and risk for infants undergoing 99mTc-MAG3 renal scans. Lifetime cancer risk from these scans is very low, though slightly higher for newborns compared to one-year-olds.

Area of Science:

  • Medical Imaging
  • Nuclear Medicine
  • Pediatric Radiology

Background:

  • Renal scans are common in infants, a high-risk group for radiation effects.
  • Limited biokinetics and dosimetry data exist for pediatric patients undergoing these scans.
  • This study aimed to reassess radiation dosimetry and risk in infants undergoing 99mTc-MAG3 renal scans.

Purpose of the Study:

  • To retrospectively analyze patient data for biokinetics and dosimetry.
  • To estimate organ doses and effective dose coefficients.
  • To evaluate age- and gender-specific excess lifetime cancer risk.

Main Methods:

  • Retrospective analysis of data from 20 infants (<20 months) with normal renal function.
  • Utilized 3D-printed infant kidney phantoms for retrospective calibration.
  • Applied OLINDA/EXM for dose assessment and NCI Radiation Risk Assessment Tool for risk evaluation.

Main Results:

  • Mean absorbed doses: 0.04 mGy/MBq (kidneys), 0.27 mGy/MBq (bladder).
  • Mean effective dose coefficient: 0.02 mSv/MBq.
  • Newborns had a 16.8/100,000 excess lifetime cancer risk, 12% higher than 1-year-olds (14.7/100,000).

Conclusions:

  • New dosimetry and biokinetics data were derived for infants undergoing 99mTc-MAG3 renal scans.
  • Radiation-associated stochastic risk increases with organ dose, influenced by age and gender.
  • The overall lifetime radiation risk from these scans is very low compared to general population cancer risks.
Abstract

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