Pediatric organ dose measurements in axial and helical multislice CT

Alanna McDermott1, R Allen White, Mike Mc-Nitt-Gray

  • 1Department of Bioinformatics and Computational Biology, UT MD Anderson Cancer Center, 1515 Holcombe Boulevard, Unit 237, Houston, Texas 77030, USA. alanna.mcdermott@gmail.com

Medical Physics
|June 24, 2009
PubMed

Insights

Helical computed tomography (CT) scans may offer a radiation dose benefit over axial scans for pediatric patients. This study found lower organ doses with helical modes, suggesting potential for reduced radiation exposure in pediatric CT imaging.

Area of Science:

  • Medical Physics
  • Radiological Imaging
  • Pediatric Dosimetry

Background:

  • Computed tomography (CT) is a vital diagnostic tool in pediatrics.
  • Optimizing CT protocols is crucial to minimize radiation dose in children.
  • Understanding organ-specific doses is essential for risk assessment.

Purpose of the Study:

  • To quantify organ radiation doses in a pediatric phantom using different CT scan modes.
  • To compare radiation doses between axial and helical CT scan protocols.
  • To evaluate the impact of pitch on organ dose in pediatric CT.

Main Methods:

  • Utilized an anthropomorphic pediatric phantom (5-yr-old equivalent) with tissue-equivalent materials.
  • Scanned the phantom using a 64-channel CT scanner with various head and chest protocols (axial and helical).
  • Measured organ doses using thermoluminescent dosimeters placed internally and on the surface.

Main Results:

  • Helical CT scans resulted in 0% to 25% lower organ doses compared to contiguous axial scans, even with equivalent effective mAs.
  • No significant dose difference was observed between helical pitch values of 0.516 and 0.984.
  • A pitch of 1.375 for chest scans showed significantly higher doses, attributed to automatic large focal spot selection.

Conclusions:

  • Helical scan modes in CT may provide a radiation dose advantage over axial modes for pediatric imaging.
  • Pitch selection impacts organ dose, with higher pitches potentially increasing dose under specific conditions.
  • Findings suggest a potential, previously unrecognized benefit of helical CT for reducing pediatric radiation exposure.

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