Radiotracer Injection

Radiotracer injection is the administration of a small amount of a radioactive compound to visualize biological processes inside the body, making it an important tool in cancer research and diagnostic imaging. After injection, the radiotracer travels through the bloodstream and accumulates in tissues according to its molecular properties, while emitted positrons or gamma rays are detected by PET or SPECT scanners to produce functional images. Researchers use these images to measure tumor metabolism, identify cancerous lesions, assess treatment response, and study how drugs reach their targets. Radiotracer studies can therefore support biomarker development, improve disease characterization, and guide more precise cancer therapies.

Radiotracer Injection - Related Videos

Research

JoVE EoE - Neuroimaging

Positron Emission Tomography Imaging of the Human Brain Using a Radiotracer

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2025

Source: Jamadar, S. et. al. Radiotracer Administration for High Temporal Resolution Positron Emission Tomography of the Human Brain: Application to FDG-fPET. J. Vis. Exp. (2019)This video demonstrates the quantification of brain glucose metabolism using positron emission tomography (PET). The participant is infused with the tracer F-18 fluorodeoxyglucose (FDG) during scanning. FDG accumulates in active neurons and emits positrons upon F-18 decay. These positrons interact with electrons,...

FDG Based PET/CT Scan: A Method of Using Radiotracer for Non-invasive Imaging of Tumor Metabolism

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2023

This article describes multimodality imaging of cancerous tissues with PET and CT diagnostic imaging by using a radiotracer 18F-FDG. Cancerous tissue with high glycolytic activity uptakes more 18F-FDG.

Research

JoVE Journal - Chemistry
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Automation of a Positron-emission Tomography (PET) Radiotracer Synthesis Protocol for Clinical Production

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Cited by 9 •

2018

Positron-emission tomography (PET) imaging sites that are involved in multiple early clinical research trials need robust and versatile radiotracer manufacturing capabilities. Using the radiotracer [18F]Clofarabine as an example, we illustrate how to automate the synthesis of a radiotracer using a flexible, cassette-based radiosynthesizer and validate the synthesis for clinical use.

18F-Labeling of Radiotracers Functionalized with a Silicon Fluoride Acceptor (SiFA) for Positron Emission Tomography

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Cited by 3 •

2020

The synthesis of fluorine-18 (18F) labeled radiopharmaceuticals for positron emission tomography typically requires months of experience. When incorporated into a radiotracer, the silicon-fluoride acceptor (SiFA) motif enables a simple 18F-labeling protocol that is independent of costly equipment and preparatory training, while reducing precursor quantity needed and utilizing milder reaction conditions.

Zebrafish Brain Ventricle Injection

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Cited by 72 •

2009

After neural tube formation, the neuroepithelium constricts and folds while the tube fills with embryonic cerebrospinal fluid (eCSF) to form the embryonic brain ventricles. We developed this ventricle injection technique to better visualize the fluid filled space in contrast to the neuroepithelial shape in a live embryo.

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