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World's lightest Compton camera with high detection efficiency, practical spatial resolution enables flexible measurements.
May 22, 2017
By: Waseda University
As represented by conventional radiograph, radiological images provide only black and white figures in 2D space. The situation is basically the same for Single photon emission tomography (SPECT) and positron emission tomography (PET), which are the two most common molecular imaging techniques used in nuclear medicine. PET is used especially for early cancer and Alzheimer’s disease detection, but radioactive tracers suitable for each detector are limited in terms of energy. For example, PET can only image monochromatic gamma rays thus provide black and white 2D images. Moreover, production of PET tracers, usually made by a cyclotron facility in medical centers, is inevitably costly. “All of these problems could be addressed if gamma rays of arbitrary energy could be easily visualized in 3D space,” pointed out Jun Kataoka, professor of applied physics at Waseda University. “This would be as revolutionary as black and white television turning into color, dramatically increasing the amount of information we could obtain from an image.” Thus, Professor Kataoka’s research group invented a medical gamma-ray detector (Compton camera) and succeeded in high-resolution, multicolor 3D molecular imaging of a live mouse which was administered with three different radioactive tracers. They discovered that the tracers iodine, strontium, and zinc accumulated in the thyroid, bones and liver respectively, confirming that these new tracers concentrated in each target organ. What’s more, this camera only weighs 580g and fits in the palm of a hand, making it the world’s most compact Compton camera. “The measurement time took 10 minutes per angle, so we were able to obtain an image taken from 12 angles in just 2 hours. The time could be reduced even more by using multiple Compton cameras. For example, if there are 12 Compton cameras surrounding an object, the same image as this study could be obtained in just 10 minutes, suggesting a new way to understand biodynamics by looking at how a drug is taken into the body in 10-minute increments.”
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