Title :
A study of possible causes of artifactual decreases in the left ventricular apex with SPECT cardiac perfusion imaging
Author :
Pretorius, P.H. ; King, M.A.
Author_Institution :
Massachusetts Univ. Med. Center, Worcester, MA, USA
fDate :
8/1/1999 12:00:00 AM
Abstract :
The objectives of this investigation were to determine the impact on apparent localization of perfusion agents in the apex of the left ventricle (LV) of cardiac and respiratory motion, extra-cardiac uptake, the anisotropic spatial resolution associated with imaging, and thinning of the LV wall at the apex. The ability of attenuation compensation (AC), and of combined attenuation and spatial resolution correction (ARC) to alter the impact of these factors on apparent apex counts was also investigated. The MCAT phantom was used to simulate cardiac gated radionuclide perfusion imaging both with and without apical thinning of the LV wall. Simple respiratory motion of the heart was included in the simulation. After reconstruction using filtered backprojection (FBP) with no correction for physical degradation (NC) and using the maximum likelihood ordered subset expectation maximization (OSEM) algorithm with AC, and with ARC, polar maps were generated. Results show that cardiac motion had no impact on apex counts other than an increase in counts with myocardial thickening. Respiratory motion of a magnitude similar to that observed clinically does not influence the apex, but does have some effect on adjacent regions. A small decrease in apical counts was observed with body-contouring as opposed to imaging with a circular camera orbit. Counts in the apex varied greatly with extent of the thinning. AC increased the visibility of the apparent decrease in apical counts over NC with apical thinning, as did ARC over AC
Keywords :
cardiology; gamma-ray absorption; haemorheology; image motion analysis; image resolution; medical image processing; single photon emission computed tomography; MCAT phantom; SPECT cardiac perfusion imaging; anisotropic spatial resolution; body-contouring; cardiac gated radionuclide perfusion imaging; circular camera orbit; extra-cardiac uptake; filtered backprojection reconstruction; left ventricular apex; maximum likelihood ordered subset expectation maximization algorithm; medical diagnostic imaging; myocardial thickening; nuclear medicine; physical degradation correction; respiratory motion; simple respiratory motion; wall thinning; AC generators; Anisotropic magnetoresistance; Attenuation; Cameras; Degradation; Heart; Image reconstruction; Imaging phantoms; Myocardium; Spatial resolution;
Journal_Title :
Nuclear Science, IEEE Transactions on