Published July 2008 | Version v1
Journal article

Quantification of dopaminergic neurotransmission SPECT studies with 123I-labelled radioligands. A comparison between different imaging systems and data acquisition protocols using Monte Carlo simulation

  • 1. Universitat de Barcelona - IDIBAPS, Unitat de Biofisica i Bioenginyeria, Departament de Ciencies Fisiologiques I, Facultat de Medicina, Barcelona (Spain)
  • 2. Institut de Bioenginyeria de Catalunya, Barcelona (Spain)
  • 3. Universitat Politecnica de Catalunya, Institut de Tecniques Energetiques, Barcelona (Spain)
  • 4. Universitat Politecnica de Catalunya, Seccio d'Enginyeria Nuclear, Departament de Fisica i Enginyeria Nuclear, Barcelona (Spain)
  • 5. CIBER en Bioingenieria, Biomateriales y Nanomedicina (CIBER-BBN), Barcelona (Spain)
  • 6. Hospital del Mar, Center for Imaging in Psychiatry, CRC-MAR, Barcelona (Spain)
  • 7. PRBB, Institut d'Alta Tecnologia, Barcelona (Spain)
  • 8. IDIBAPS, Servei de Medicina Nuclear, Hospital Clinic, Barcelona (Spain)

Description

123I-labelled radioligands are commonly used for single-photon emission computed tomography (SPECT) imaging of the dopaminergic system to study the dopamine transporter binding. The aim of this work was to compare the quantitative capabilities of two different SPECT systems through Monte Carlo (MC) simulation. The SimSET MC code was employed to generate simulated projections of a numerical phantom for two gamma cameras equipped with a parallel and a fan-beam collimator, respectively. A fully 3D iterative reconstruction algorithm was used to compensate for attenuation, the spatially variant point spread function (PSF) and scatter. A post-reconstruction partial volume effect (PVE) compensation was also developed. For both systems, the correction for all degradations and PVE compensation resulted in recovery factors of the theoretical specific uptake ratio (SUR) close to 100%. For a SUR value of 4, the recovered SUR for the parallel imaging system was 33% for a reconstruction without corrections (OSEM), 45% for a reconstruction with attenuation correction (OSEM-A), 56% for a 3D reconstruction with attenuation and PSF corrections (OSEM-AP), 68% for OSEM-AP with scatter correction (OSEM-APS) and 97% for OSEM-APS plus PVE compensation (OSEM-APSV). For the fan-beam imaging system, the recovered SUR was 41% without corrections, 55% for OSEM-A, 65% for OSEM-AP, 75% for OSEM-APS and 102% for OSEM-APSV. Our findings indicate that the correction for degradations increases the quantification accuracy, with PVE compensation playing a major role in the SUR quantification. The proposed methodology allows us to reach similar SUR values for different SPECT systems, thereby allowing a reliable standardisation in multicentric studies. (orig.)

Availability note (English)

Available from: http://dx.doi.org/10.1007/s00259-007-0711-z

Additional details

Identifiers

Publishing Information

Journal Title
European Journal of Nuclear Medicine and Molecular Imaging
Journal Volume
35
Journal Issue
7
Journal Page Range
p. 1334-1342
ISSN
1619-7070