Related Experiment Video
Updated: Jan 29, 2026

Human Neuroendocrine Tumor Cell Lines as a Three-Dimensional Model for the Study of Human Neuroendocrine Tumor Therapy
Published on: August 14, 2012
Molecular imaging of neuroendocrine tumors
1a Uppsala University Hospital, Akademiska sjukhuset, SE-751 85 Uppsala, Sweden. kjell.oberg@medsci.uu.se.
Abstract:
Molecular imaging represents tissue-specific imaging and quantification of physiologically functional and molecular events in tumors, utilizing new noninvasive imaging modalities. It combines anatomic, physiologic and metabolic information in a single imaging session. Neuroendocrine tumors (NETs) present unique features to use specific nuclear imaging, such as somatostatin receptor scintigraphy (SRS), metaiodobenzylguanidine scans and PET scanning. NETs express somatostatin receptors on tumor cells and can, thus, be visualized by 111In-gadolinium-diethylenetriame pentaacetic acid-octreotide (OctreoScan®), which is currently the most common scanning technique for NETs. Every patient with a NET should be subjected to SRS. Technetium-labeled somatostatin analogs are currently growing in importance. Metaiodobenzylguanidine scanning was previously the only method for detection and follow-up of NETs, but is nowadays more or less replaced by octreotide scanning. During the last decade, PET scanning has been developed for detection and follow-up of patients with NETs. It has clearly demonstrated the highest sensitivity and specificity in the range of 85-95%. It detects smaller tumors down to 3 mm, compared with SRS, which has a size limit of approximately 1 cm. 68Ga-DOTA-octreotide will, in the future, replace SRS owing to its higher sensitivity and specificity, and also reduce the time for investigation. It will also offer the possibility to evaluate the number of somatostatin receptors in a specific tumor. In the future, PET scanning will be more readily available and less expensive, and it will be possible to study tumor biology, vascularization and gene expression in NETs with the development of new tracers.
Insights
Molecular imaging enhances tumor detection in neuroendocrine tumors (NETs). Positron emission tomography (PET) scanning offers superior sensitivity and specificity compared to older methods like somatostatin receptor scintigraphy (SRS).
Area of Science:
- Oncology
- Radiology
- Medical Imaging
Background:
- Molecular imaging combines anatomical, physiological, and metabolic data for tumor visualization.
- Neuroendocrine tumors (NETs) express somatostatin receptors, making them amenable to specific nuclear imaging techniques.
Purpose of the Study:
- To review current and emerging molecular imaging modalities for neuroendocrine tumors (NETs).
- To compare the diagnostic performance of various imaging techniques in NET detection and follow-up.
Main Methods:
- Review of somatostatin receptor scintigraphy (SRS), metaiodobenzylguanidine (MIBG) scans, and positron emission tomography (PET) scanning for NETs.
- Discussion of technetium-labeled somatostatin analogs and Gallium-68 (⁶⁸Ga)-labeled DOTA-octreotide.
Main Results:
- PET scanning demonstrates high sensitivity (85-95%) and specificity, detecting tumors as small as 3 mm.
- SRS is the current standard but has a larger detection limit (approx. 1 cm).
- ⁶⁸Ga-DOTA-octreotide is poised to replace SRS due to higher sensitivity, specificity, and receptor quantification capabilities.
Conclusions:
- PET scanning, particularly with tracers like ⁶⁸Ga-DOTA-octreotide, represents the future of NET imaging.
- Advancements in PET tracers will enable detailed study of tumor biology, vascularization, and gene expression in NETs.
Related Concept Videos
Molecular Models
Molecular Orbital Theory II
Molecular Orbital Theory I
Predicting Molecular Geometry
Molecular and Ionic Solids
Molecular Solids
Molecular crystalline solids, such as ice, sucrose (table sugar), and iodine, are solids that are composed of neutral molecules as their constituent units. These molecules are held together by weak intermolecular forces such as London dispersion forces, dipole-dipole interactions, or hydrogen bonds, which...
Kinetic Molecular Theory: Molecular Velocities, Temperature, and Kinetic Energy

