Cancer tissue being bombarded by targeted alpha particles. The generator developed by Los Alamos National Laboratory holds uranium-230, which decays to thorium-226. Further decay produces short-lived daughter isotopes, emitting four more alpha particles resulting in a very high combined radiation dose to destroy cancer cells. Image Courtesy LANL
Improved options for cancer treatment are on the way, thanks to a new system developed at Los Alamos National Laboratory for producing alpha-emitting medical radioisotopes intended to target and overpower diseased tissue while sparing the healthy tissue around it.
“The new system is based on a uranium-230/thorium-226 pairing, where the thorium-226 is supplied in a form suitable for medical applications,” said Michael Fassbender, the lead researcher at Los Alamos. “The thorium-226 emits multiple alpha particles as it decays, delivering a powerful blow to diseased cells. This is similar to actinium-225, another promising alpha therapy isotope. The DOE Isotope Program is committed to making multiple options, or a variety of radioisotopes available to accelerate the development of therapeutics that could be used to treat different cancers.”
Radioisotopes are a key weapon in the medical arsenal for treating cancer. Most treatments use beta-particle-emitting isotopes to destroy cancer cells. Alpha particles can do a better job. Not only do they carry much more destructive energy, but they also release this energy over a very short range, which allows for large radiation doses to be transported in microscopic volumes directly to the malignant cells. Thus, healthy tissue is less likely to be damaged. Alpha particle therapeutics are also effective against cancer that has metastasized and spread around the body.
Through a chemical process, the new Los Alamos generator allows repeated separation of thorium-226 from its parent, uranium-230. The generator will be available to a researcher through the National Isotope Development Center (NIDC), giving them a consistent supply of thorium-226 to use in investigating the next steps in creating the radiopharmaceuticals needed to treat patients.
For more information, read about the science here.
Mastren, T. et al., A reverse 230U/226Th radionuclide generator for targeted alpha therapy applications. Nucl Med Biol, 90-91, 69 (2020). [DOI: /10.1016/j.nucmedbio.2020.09.006]
Friend, M.T. et al., Production of 230Pa by proton irradiation of 232Th at the LANL isotope production facility: Precursor of 230U for targeted alpha therapy. Appl Radiat Isot 156, 108973 (2020). [DOI: 10.1016/j.apradiso.2019.108973]
Mastren, T. et al., Separation of protactinium employing sulfur-based extraction chromatographic resins. Anal. Chem. 90 (11), 7012 (2018). [DOI: 10.1021/acs.analchem.8b01380]
The funding: This research is supported by the U.S. Department of Energy Isotope Program, managed by the Office of Science.
About Los Alamos National Laboratory
Los Alamos National Laboratory, a multidisciplinary research institution engaged in strategic science on behalf of national security, is managed by Triad, a public service oriented, national security science organization equally owned by its three founding members: Battelle Memorial Institute (Battelle), the Texas A&M University System (TAMUS), and the Regents of the University of California (UC) for the Department of Energy’s National Nuclear Security Administration.
Los Alamos enhances national security by ensuring the safety and reliability of the U.S. nuclear stockpile, developing technologies to reduce threats from weapons of mass destruction, and solving problems related to energy, environment, infrastructure, health, and global security concerns.