Skull fractures in pediatric patients on computerized tomogram: comparison between routing bone window images and 3D

Sathish Kumar Dundamadappa1, Senthur Thangasamy, Nancy Resteghini

  • 1University of Massachusetts, 55 Lake Avenue North, Worcester, MA, 01655, USA, dundamadappa@gmail.com.

Emergency Radiology
|February 21, 2015
PubMed

Insights

Three-dimensional volume-rendered CT images aid in detecting pediatric skull fractures, complementing routine bone window images. These 3D images reduce interpretation time and improve fracture characterization without extra radiation.

Area of Science:

  • Radiology
  • Pediatric Imaging
  • Trauma Imaging

Background:

  • Skull fractures indicate severe head trauma and associated brain injuries.
  • Evaluating pediatric skull fractures is challenging due to open sutures.
  • Three-dimensional volume-rendered (3DV) CT images may enhance fracture detection.

Purpose of the Study:

  • To compare the sensitivity and specificity of 3DV CT versus routine axial bone window (RBW) images for calvarial fractures in pediatric patients.
  • To assess the impact of 3DV imaging on interpretation time and fracture characterization.
  • To evaluate the utility of 3DV images in pediatric head trauma assessment.

Main Methods:

  • Multi-reader, multi-case, paired retrospective study.
  • Analysis of 60 pediatric head trauma cases (22 with fractures, 38 without).
  • Comparison of interpretation by two neuroradiologists and a radiology trainee using RBW and 3DV CT images.

Main Results:

  • No statistically significant difference in sensitivity between RBW and 3DV interpretations.
  • Significantly reduced interpretation times with 3DV images for all readers.
  • Increased identification of sutural diastasis on 3DV images.

Conclusions:

  • 3DV CT images are valuable for detecting and characterizing pediatric calvarial fractures.
  • 3DV imaging should be integrated into routine pediatric head trauma protocols.
  • 3DV offers benefits of reduced interpretation time and enhanced fracture characterization without additional radiation exposure.