Published December 2012 | Version v1
Journal article

Spectral CT of carotid atherosclerotic plaque: comparison with histology

  • 1. University of Canterbury, Department of Physics and Astronomy, Christchurch (New Zealand)
  • 2. University of Otago, Centre for Bioengineering, Christchurch (New Zealand)
  • 3. University of Canterbury, Free Radical Biochemistry Laboratory, School of Biological Sciences, Christchurch (New Zealand)
  • 4. University of Otago, Department of Medicine, Christchurch (New Zealand)
  • 5. University of Otago, Department of Academic Radiology, Christchurch (New Zealand)
  • 6. European Organisation for Nuclear Research (CERN), Geneva (Switzerland)
  • 7. University of Canterbury, Department of Electrical and Computer Engineering, Christchurch (New Zealand)
  • 8. Christchurch Hospital, Department of Vascular, Endovascular and Transplant Surgery, Christchurch (New Zealand)
  • 9. University of Otago, Christchurch, Department of Radiology, PO Box 4345, Christchurch (New Zealand)

Description

To distinguish components of vulnerable atherosclerotic plaque by imaging their energy response using spectral CT and comparing images with histology. After spectroscopic calibration using phantoms of plaque surrogates, excised human carotid atherosclerotic plaques were imaged using MARS CT using a photon-processing detector with a silicon sensor layer and microfocus X-ray tube (50 kVp, 0.5 mA) at 38-μm voxel size. The plaques were imaged, sectioned and re-imaged using four threshold energies: 10, 16, 22 and 28 keV; then sequentially stained with modified Von Kossa, Perl's Prussian blue and Oil-Red O, and photographed. Relative Hounsfield units across the energies were entered into a linear algebraic material decomposition model to identify the unknown plaque components. Lipid, calcium, iron and water-like components of plaque have distinguishable energy responses to X-ray, visible on spectral CT images. CT images of the plaque surface correlated very well with histological photographs. Calcium deposits (>1,000 μm) in plaque are larger than iron deposits (<100 μm), but could not be distinguished from each other within the same voxel using the energy range available. Spectral CT displays energy information in image form at high spatial resolution, enhancing the intrinsic contrast of lipid, calcium and iron within atheroma. (orig.)

Availability note (English)

Available from: http://dx.doi.org/10.1007/s00330-012-2538-7

Additional details

Identifiers

Publishing Information

Journal Title
European Radiology
Journal Volume
22
Journal Issue
12
Journal Page Range
p. 2581-2588
ISSN
0938-7994
CODEN
EURAE3