Literature DB >> 25596759

Application of ion exchange and extraction chromatography to the separation of actinium from proton-irradiated thorium metal for analytical purposes.

V Radchenko1, J W Engle1, J J Wilson1, J R Maassen1, F M Nortier1, W A Taylor1, E R Birnbaum1, L A Hudston1, K D John1, M E Fassbender2.   

Abstract

Actinium-225 (t1/2=9.92d) is an α-emitting radionuclide with nuclear properties well-suited for use in targeted alpha therapy (TAT), a powerful treatment method for malignant tumors. Actinium-225 can also be utilized as a generator for (213)Bi (t1/2 45.6 min), which is another valuable candidate for TAT. Actinium-225 can be produced via proton irradiation of thorium metal; however, long-lived (227)Ac (t1/2=21.8a, 99% β(-), 1% α) is co-produced during this process and will impact the quality of the final product. Thus, accurate assays are needed to determine the (225)Ac/(227)Ac ratio, which is dependent on beam energy, irradiation time and target design. Accurate actinium assays, in turn, require efficient separation of actinium isotopes from both the Th matrix and highly radioactive activation by-products, especially radiolanthanides formed from proton-induced fission. In this study, we introduce a novel, selective chromatographic technique for the recovery and purification of actinium isotopes from irradiated Th matrices. A two-step sequence of cation exchange and extraction chromatography was implemented. Radiolanthanides were quantitatively removed from Ac, and no non-Ac radionuclidic impurities were detected in the final Ac fraction. An (225)Ac spike added prior to separation was recovered at ≥ 98%, and Ac decontamination from Th was found to be ≥ 10(6). The purified actinium fraction allowed for highly accurate (227)Ac determination at analytical scales, i.e., at (227)Ac activities of 1-100 kBq (27 nCi to 2.7 μCi).
Copyright © 2014 Elsevier B.V. All rights reserved.

Entities:  

Keywords:  Actinium isotopes; Extraction chromatography; Ion exchange; Lanthanide separation; Thorium chelation; Thorium metal

Mesh:

Substances:

Year:  2014        PMID: 25596759     DOI: 10.1016/j.chroma.2014.12.045

Source DB:  PubMed          Journal:  J Chromatogr A        ISSN: 0021-9673            Impact factor:   4.759


  11 in total

1.  A Radium-223 microgenerator from cyclotron-produced trace Actinium-227.

Authors:  Diane S Abou; Juile Pickett; John E Mattson; Daniel L J Thorek
Journal:  Appl Radiat Isot       Date:  2016-11-04       Impact factor: 1.513

2.  Spectroscopic and computational investigation of actinium coordination chemistry.

Authors:  Maryline G Ferrier; Enrique R Batista; John M Berg; Eva R Birnbaum; Justin N Cross; Jonathan W Engle; Henry S La Pierre; Stosh A Kozimor; Juan S Lezama Pacheco; Benjamin W Stein; S Chantal E Stieber; Justin J Wilson
Journal:  Nat Commun       Date:  2016-08-17       Impact factor: 14.919

3.  Simultaneous Separation of Actinium and Radium Isotopes from a Proton Irradiated Thorium Matrix.

Authors:  Tara Mastren; Valery Radchenko; Allison Owens; Roy Copping; Rose Boll; Justin R Griswold; Saed Mirzadeh; Lance E Wyant; Mark Brugh; Jonathan W Engle; Francois M Nortier; Eva R Birnbaum; Kevin D John; Michael E Fassbender
Journal:  Sci Rep       Date:  2017-08-15       Impact factor: 4.379

4.  Synthesis and Characterization of the Actinium Aquo Ion.

Authors:  Maryline G Ferrier; Benjamin W Stein; Enrique R Batista; John M Berg; Eva R Birnbaum; Jonathan W Engle; Kevin D John; Stosh A Kozimor; Juan S Lezama Pacheco; Lindsay N Redman
Journal:  ACS Cent Sci       Date:  2017-02-01       Impact factor: 14.553

5.  Separation of 103Ru from a proton irradiated thorium matrix: A potential source of Auger therapy radionuclide 103mRh.

Authors:  Tara Mastren; Valery Radchenko; Philip D Hopkins; Jonathan W Engle; John W Weidner; Roy Copping; Mark Brugh; F Meiring Nortier; Eva R Birnbaum; Kevin D John; Michael Ernst-Heinrich Fassbender
Journal:  PLoS One       Date:  2017-12-22       Impact factor: 3.240

Review 6.  An Overview of Targeted Alpha Therapy with 225Actinium and 213Bismuth.

Authors:  Alfred Morgenstern; Christos Apostolidis; Clemens Kratochwil; Mike Sathekge; Leszek Krolicki; Frank Bruchertseifer
Journal:  Curr Radiopharm       Date:  2018

7.  The coordination chemistry of CmIII, AmIII, and AcIII in nitrate solutions: an actinide L3-edge EXAFS study.

Authors:  Maryline G Ferrier; Benjamin W Stein; Sharon E Bone; Samantha K Cary; Alexander S Ditter; Stosh A Kozimor; Juan S Lezama Pacheco; Veronika Mocko; Gerald T Seidler
Journal:  Chem Sci       Date:  2018-08-01       Impact factor: 9.825

8.  Ultra-selective ligand-driven separation of strategic actinides.

Authors:  Gauthier J-P Deblonde; Abel Ricano; Rebecca J Abergel
Journal:  Nat Commun       Date:  2019-06-04       Impact factor: 14.919

9.  Preliminary Therapy Evaluation of (225)Ac-DOTA-c(RGDyK) Demonstrates that Cerenkov Radiation Derived from (225)Ac Daughter Decay Can Be Detected by Optical Imaging for In Vivo Tumor Visualization.

Authors:  Darpan N Pandya; Roy Hantgan; Mikalai M Budzevich; Nancy D Kock; David L Morse; Izadora Batista; Akiva Mintz; King C Li; Thaddeus J Wadas
Journal:  Theranostics       Date:  2016-03-01       Impact factor: 11.556

10.  Evaluation of polydentate picolinic acid chelating ligands and an α-melanocyte-stimulating hormone derivative for targeted alpha therapy using ISOL-produced 225Ac.

Authors:  Caterina F Ramogida; Andrew K H Robertson; Una Jermilova; Chengcheng Zhang; Hua Yang; Peter Kunz; Jens Lassen; Ivica Bratanovic; Victoria Brown; Lily Southcott; Cristina Rodríguez-Rodríguez; Valery Radchenko; François Bénard; Chris Orvig; Paul Schaffer
Journal:  EJNMMI Radiopharm Chem       Date:  2019-08-06
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