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Updated: Jun 21, 2026

A Whole Body Dosimetry Protocol for Peptide-Receptor Radionuclide Therapy (PRRT): 2D Planar Image and Hybrid 2D+3D SPECT/CT Image Methods
Published on: April 24, 2020
Methodological approaches to planar and volumetric scintigraphic imaging of small volume targets with high spatial
J Mejia1, O Y Galvis-Alonso, J Braga
1Departamento de Biologia Molecular, Faculdade de Medicina de São José do Rio Preto, São José do Rio Preto, SP, Brasil. mejia_famerp@yahoo.com.br
Abstract:
Single-photon emission computed tomography (SPECT) is a non-invasive imaging technique, which provides information reporting the functional states of tissues. SPECT imaging has been used as a diagnostic tool in several human disorders and can be used in animal models of diseases for physiopathological, genomic and drug discovery studies. However, most of the experimental models used in research involve rodents, which are at least one order of magnitude smaller in linear dimensions than man. Consequently, images of targets obtained with conventional gamma-cameras and collimators have poor spatial resolution and statistical quality. We review the methodological approaches developed in recent years in order to obtain images of small targets with good spatial resolution and sensitivity. Multipinhole, coded mask- and slit-based collimators are presented as alternative approaches to improve image quality. In combination with appropriate decoding algorithms, these collimators permit a significant reduction of the time needed to register the projections used to make 3-D representations of the volumetric distribution of target's radiotracers. Simultaneously, they can be used to minimize artifacts and blurring arising when single pinhole collimators are used. Representation images are presented, which illustrate the use of these collimators. We also comment on the use of coded masks to attain tomographic resolution with a single projection, as discussed by some investigators since their introduction to obtain near-field images. We conclude this review by showing that the use of appropriate hardware and software tools adapted to conventional gamma-cameras can be of great help in obtaining relevant functional information in experiments using small animals.
Insights
Advanced collimator designs significantly enhance single-photon emission computed tomography (SPECT) imaging quality in small animal models. This improves functional imaging for disease research and drug discovery in rodents.
Area of Science:
- Medical Imaging
- Nuclear Medicine
- Biomedical Engineering
Background:
- Single-photon emission computed tomography (SPECT) is crucial for assessing tissue function in human diseases and animal models.
- Conventional SPECT imaging in small animals (rodents) suffers from poor spatial resolution and statistical quality due to size limitations.
- Existing methods struggle to provide high-resolution functional imaging in small research subjects.
Purpose of the Study:
- To review recent methodological advancements in SPECT imaging for small animal models.
- To highlight techniques that improve spatial resolution and sensitivity in rodent imaging.
- To discuss the application of novel collimator designs for enhanced functional imaging.
Main Methods:
- Review of advanced collimator designs: multipinhole, coded mask, and slit-based collimators.
- Discussion of decoding algorithms for improved image reconstruction.
- Analysis of hardware and software adaptations for conventional gamma-cameras.
Main Results:
- Multipinhole, coded mask, and slit collimators offer improved spatial resolution and sensitivity compared to single pinhole designs.
- Advanced collimators significantly reduce data acquisition time for 3D SPECT imaging.
- These methods minimize artifacts and blurring, leading to higher quality images.
- Coded masks show potential for tomographic resolution with single projections.
Conclusions:
- Novel collimator designs and associated algorithms substantially improve SPECT image quality in small animals.
- These advancements enable more accurate physiopathological, genomic, and drug discovery studies using rodent models.
- Optimized hardware and software tools are essential for obtaining relevant functional information in small animal research.

