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Updated: Sep 24, 2025

Radiosynthesis, Quality Control, and Small Animal Positron Emission Tomography Imaging of 68Ga-Labelled Nano Molecules
Published on: October 4, 2024
Nuclear-medicine probes: Where we are and where we are going
Andrea Gonzalez-Montoro1, Cesar David Vera-Donoso2, Georgios Konstantinou3
1Instituto de Instrumentación para Imagen Molecular (I3M), Centro Mixto CSIC Universitat Politècnica de València, Valencia, Spain.
Abstract:
Nuclear medicine probes turned into the key for the identification and precise location of sentinel lymph nodes and other occult lesions (i.e., tumors) by using the systemic administration of radiotracers. Intraoperative nuclear probes are key in the surgical management of some malignancies as well as in the determination of positive surgical margins, thus reducing the extent and potential surgery morbidity. Depending on their application, nuclear probes are classified into two main categories, namely, counting and imaging. Although counting probes present a simple design, are handheld (to be moved rapidly), and provide only acoustic signals when detecting radiation, imaging probes, also known as cameras, are more hardware-complex and also able to provide images but at the cost of an increased intervention time as displacing the camera has to be done slowly. This review article begins with an introductory section to highlight the relevance of nuclear-based probes and their components as well as the main differences between ionization- (semiconductor) and scintillation-based probes. Then, the most significant performance parameters of the probe are reviewed (i.e., sensitivity, contrast, count rate capabilities, shielding, energy, and spatial resolution), as well as the different types of probes based on the target radiation nature, namely: gamma (γ), beta (β) (positron and electron), and Cherenkov. Various available intraoperative nuclear probes are finally compared in terms of performance to discuss the state-of-the-art of nuclear medicine probes. The manuscript concludes by discussing the ideal probe design and the aspects to be considered when selecting nuclear-medicine probes.
Insights
Nuclear medicine probes precisely locate tumors and sentinel lymph nodes using radiotracers. This review compares intraoperative nuclear probe types, performance, and design for improved cancer surgery and reduced morbidity.
Area of Science:
- Nuclear medicine
- Medical instrumentation
- Surgical oncology
Background:
- Nuclear medicine probes are essential for identifying occult lesions and sentinel lymph nodes via radiotracer administration.
- Intraoperative nuclear probes aid in surgical management of malignancies and determination of positive surgical margins, potentially reducing morbidity.
Purpose of the Study:
- To review the relevance, components, and types of nuclear-based probes.
- To compare the performance of various intraoperative nuclear probes and discuss the state-of-the-art.
- To provide guidance on ideal probe design and selection criteria.
Main Methods:
- Review of existing literature on nuclear medicine probes, categorizing them into counting and imaging types.
- Discussion of probe components, differences between ionization- and scintillation-based probes.
- Analysis of key performance parameters (sensitivity, contrast, resolution) and probe types based on radiation (gamma, beta, Cherenkov).
Main Results:
- Categorization of nuclear probes into counting (simple, acoustic feedback) and imaging (complex, visual feedback) types.
- Detailed review of performance parameters including sensitivity, contrast, count rate, shielding, energy, and spatial resolution.
- Comparison of gamma, beta, and Cherenkov radiation probes, highlighting their applications and limitations.
Conclusions:
- Nuclear medicine probes are critical tools in modern oncology for precise lesion localization and margin assessment.
- Understanding probe types, performance metrics, and design considerations is crucial for optimal clinical application.
- Future directions include optimizing probe design for enhanced accuracy and reduced intervention time.
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