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Receptor imaging in oncology by means of nuclear medicine: current status
Bieke Van Den Bossche1, Christophe Van de Wiele
1Department of Nuclear Medicine, University Hospital Ghent, Ghent, Belgium.
Abstract:
To date, our understanding of the role of receptors and their cognate ligands in cancer is being successfully translated into the design and development of an arsenal of new, less toxic, and more specific anticancer drugs. Because most of these novel drugs are cytostatic, objective response as measured by morphologic imaging modalities (eg, computed tomography or magnetic resonance imaging) cannot be used as a surrogate marker for drug development or for clinical decision making. Positron emission tomography (PET) can be used to image and quantify the in vivo distribution of positron-emitting radioisotopes such as oxygen-15, carbon-11, and fluorine-18 that can be substituted or added into biologically relevant and specific receptor radioligands. Similarly, single-photon emission computed tomography (SPECT) can be used to image and quantify the in vivo distribution of receptor targeting compounds labeled with indium-111, technetium-99m, and iodine-123. By virtue of their whole-body imaging capacity and the absence of errors of sampling and tissue manipulation as well as preparation, both techniques have the potential to address locoregional receptor status noninvasively and repetitively. This article reviews available data on the in vivo evaluation of receptor systems by means of PET or SPECT for identifying and monitoring patients with sufficient receptor overexpression for tailored therapeutic interventions, and also for depicting tumor tissue and determining the currently largely unknown heterogeneity in receptor expression among different tumor lesions within and between patients.
Insights
Positron emission tomography (PET) and single-photon emission computed tomography (SPECT) enable noninvasive imaging of cancer receptor status. These techniques help identify patients for targeted therapies and assess tumor heterogeneity for personalized cancer treatment.
Area of Science:
- Oncology
- Radiology
- Molecular Imaging
Background:
- Targeted cancer therapies rely on understanding receptor-ligand interactions.
- Cytostatic anticancer drugs require novel methods for monitoring treatment efficacy.
- Morphologic imaging is insufficient for evaluating response to cytostatic therapies.
Purpose of the Study:
- To review the use of Positron Emission Tomography (PET) and Single-Photon Emission Computed Tomography (SPECT) in evaluating cancer receptor systems.
- To highlight the potential of PET and SPECT in guiding targeted cancer therapy.
- To discuss the role of these imaging techniques in assessing tumor heterogeneity.
Main Methods:
- Utilizing positron-emitting radioisotopes (e.g., oxygen-15, carbon-11, fluorine-18) for PET imaging.
- Employing radiolabeled compounds (e.g., indium-111, technetium-99m, iodine-123) for SPECT imaging.
- Noninvasive, whole-body imaging to assess locoregional receptor status repetitively.
Main Results:
- PET and SPECT allow in vivo quantification of receptor radioligands.
- These techniques overcome limitations of sampling errors and tissue manipulation inherent in traditional methods.
- Demonstrated potential for identifying patients with sufficient receptor overexpression for tailored interventions.
Conclusions:
- PET and SPECT offer noninvasive, repetitive assessment of cancer receptor status.
- These imaging modalities are crucial for patient selection in targeted therapy.
- In vivo receptor imaging aids in understanding and managing tumor heterogeneity.
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