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Updated: May 16, 2025

Utilizing 18F-FDG PET/CT Imaging and Quantitative Histology to Measure Dynamic Changes in the Glucose Metabolism in Mouse Models of Lung Cancer
Published on: July 21, 2018
Beyond fluorodeoxyglucose: Molecular imaging of cancer in precision medicine
Malik E Juweid1,2, Soud F Al-Qasem1, Fadlo R Khuri3
1Department of Radiology and Nuclear Medicine, School of Medicine, University of Jordan, Amman, Jordan.
Abstract:
Cancer molecular imaging is the noninvasive visualization of a process unique to or altered in neoplasia, such as proliferation, glucose metabolism, and receptor expression, which is relevant to patient management. Several molecular imaging modalities are now available, including magnetic resonance, optical, and nuclear imaging. Nuclear imaging, particularly using fluorine-18-fluorodeoxyglucose positron emission tomography, is widely used in the staging and response assessment of multiple cancer types. However, at this writing, new nuclear medicine probes, especially positron emission tomography tracers, are increasingly used or are being investigated for cancer evaluation. This review focuses on these probes, their biologic targets, and the applications or potential applications for their use in the assessment of various neoplasms, including both probes available for commercial use-such as somatostatin receptor ligands in neuroendocrine tumors, prostate-specific membrane antigen ligands in prostate cancer, norepinephrine analogs in neural crest tumors like neuroblastoma, and estrogen analogs in breast cancer-and others in clinical development, such as fibroblast-activating protein inhibitors, C-X-C chemokine receptor type 4 ligands, and monoclonal antibodies targeting receptor tyrosine kinases, CD4-positive or CD8-positive tumor-infiltrating lymphocytes, tumor-associated macrophages, and cancer stem cell biomarkers. These developments represent a major step toward the integration of molecular imaging as a powerful tool in precision medicine, with an expectedly significant impact on patient management and outcome.
Insights
New nuclear medicine probes enhance cancer molecular imaging for precise patient management. These advanced positron emission tomography tracers offer new ways to assess various neoplasms, improving cancer diagnosis and treatment strategies.
Area of Science:
- Oncology
- Nuclear Medicine
- Molecular Imaging
Background:
- Molecular imaging visualizes cancer-specific processes like proliferation and metabolism.
- Current modalities include MRI, optical, and nuclear imaging, with FDG-PET widely used.
- Advancements in nuclear medicine probes are expanding cancer evaluation capabilities.
Purpose of the Study:
- To review novel nuclear medicine probes for cancer molecular imaging.
- To discuss their biologic targets and applications in neoplasm assessment.
- To highlight their role in precision medicine for improved patient outcomes.
Main Methods:
- Review of existing and investigational nuclear medicine probes.
- Focus on positron emission tomography (PET) tracers.
- Analysis of probes targeting specific cancer biomarkers and cellular processes.
Main Results:
- Commercially available probes target somatostatin receptors, PSMA, norepinephrine, and estrogen receptors.
- Investigational probes include FAPI inhibitors, CXCR4 ligands, and antibodies for various targets.
- These probes show potential in assessing diverse cancers like neuroendocrine, prostate, breast, and neural crest tumors.
Conclusions:
- New nuclear medicine probes represent a significant advancement in cancer molecular imaging.
- These tools are crucial for precision medicine, impacting patient management and outcomes.
- Continued development promises enhanced diagnostic and therapeutic strategies for cancer.
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