High-yielding, automated production of 3′-deoxy-3′-[18F]fluorothymidine using a modified Bioscan Coincidence FDG reaction module

被引:11
|
作者
Cheung, Yiu-Yin [1 ]
Nickels, Michael L. [1 ,4 ]
McKinley, Eliot T. [1 ,3 ]
Buck, Jason R. [1 ,4 ]
Manning, H. Charles [1 ,2 ,3 ,4 ,5 ,6 ]
机构
[1] Vanderbilt Univ, Med Ctr, Inst Imaging Sci, Nashville, TN 37235 USA
[2] Vanderbilt Univ, Med Ctr, Program Chem & Phys Biol, Nashville, TN USA
[3] Vanderbilt Univ, Dept Biomed Engn, Nashville, TN 37235 USA
[4] Vanderbilt Univ, Med Ctr, Dept Radiol & Radiol Sci, Nashville, TN 37232 USA
[5] Vanderbilt Univ, Med Ctr, Vanderbilt Ingram Canc Ctr, Nashville, TN USA
[6] Vanderbilt Univ, Med Ctr, Dept Neurosurg, Nashville, TN USA
基金
美国国家卫生研究院;
关键词
F-18]FLT; Automated radiosynthesis; Solid-phase extraction (SPE); Positron emission tomography (PET); PRECLINICAL MODELS; THERAPY; RADIOSYNTHESIS; PRECURSOR;
D O I
10.1016/j.apradiso.2014.11.011
中图分类号
O61 [无机化学];
学科分类号
070301 ; 081704 ;
摘要
Introduction: High-yielding, automated production of a PET tracer that reflects proliferation, 3'-deoxy-3'[F-18]fluorothymidine ([F-18]FLT), is reported using a modified Bioscan Coincidence FDG reaction module. Methods: Production of [F-18]FLT was implemented through; (1) modification of an original FDG manifold; (2) application of an alternate time sequence; and (3) altered solid-phase extraction (SPE) purification. Quality control testing, including standard radiochemical figures of merit and preclinical positron emission tomography (PET) imaging, was carried out. Results: High decay-corrected yields of [F-18]FLT (16-39%) were reproducibly obtained. The product exhibited very high specific activity (4586.9 TBq/mmol; 123,969 Ci/mmol) and radiochemical purity ( > 99%). Overall, the [F-18]FLT produced in this manner was superior to typical productions that utilized a GE TRACERIab FXF-N reaction module. Additionally, purification with SPE cartridges, followed by manual elution, accelerated overall run time and resulted in a two-fold increase in [F-18]FLT concentration. PET imaging showed the [F-18]FLT produced by this method was highly suitable for non-invasive tumor imaging in mice. Conclusions: The Bioscan Coincidence GE FDG Reaction Module was readily adapted to reproducibly provide [F-18]FLT in high yield, specific activity, and radiochemical purity. The approach was suitable to provide sufficient amounts of material for predinical studies. (C) 2014 Elsevier Ltd. All rights reserved.
引用
收藏
页码:47 / 51
页数:5
相关论文
共 50 条
  • [41] Prognostic value of 3′-Deoxy-3′-18F-Fluorothymidine ([18F] FLT PET) in patients with recurrent malignant gliomas
    Zhao, Fen
    Cui, Yunfeng
    Li, Minghuan
    Fu, Zheng
    Chen, Zhaoqiu
    Kong, Li
    Yang, Guoren
    Yu, Jinming
    NUCLEAR MEDICINE AND BIOLOGY, 2014, 41 (08) : 710 - 715
  • [42] Simple and highly efficient synthesis of 3′-deoxy-3′-[18F]fluorothymidine using nucleophilic fluorination catalyzed by protic solvent
    Sang Ju Lee
    Seung Jun Oh
    Dae Yoon Chi
    Hee Seup Kil
    Euy Nyong Kim
    Jin Sook Ryu
    Dae Hyuk Moon
    European Journal of Nuclear Medicine and Molecular Imaging, 2007, 34 : 1406 - 1409
  • [43] Monitoring Tumor Response After Histone Deacetylase Inhibitor Treatment Using 3′-Deoxy-3′-[18F]-fluorothymidine PET
    Pei-Chia Chan
    Chun-Yi Wu
    Lin-Shan Chou
    Chung-Hsien Ho
    Chi-Wei Chang
    Shih-Hwa Chiou
    Wuu-Jyh Lin
    Fu-Du Chen
    C. Allen Chang
    Jeng-Jong Hwang
    Ren-Shyan Liu
    Hsin-Ell Wang
    Molecular Imaging and Biology, 2015, 17 : 394 - 402
  • [44] Potential impact of [18F]3′-deoxy-3′-fluorothymidine versus [18F]fluoro-2-deoxy--glucose in positron emission tomography for colorectal cancer
    Francis, DL
    Visvikis, D
    Costa, DC
    Arulampalam, THA
    Townsend, C
    Luthra, SK
    Taylor, I
    Ell, PJ
    EUROPEAN JOURNAL OF NUCLEAR MEDICINE AND MOLECULAR IMAGING, 2003, 30 (07) : 988 - 994
  • [45] Comparison of synthesis yields of 3′-deoxy-3′-[18F]fluorothymidine by nucleophilic fluorination in various alcohol solvents
    Lee, Sang Ju
    Oh, Seung Jun
    Chi, Dae Yoon
    Lee, Byoung Se
    Ryu, Jin Sook
    Moon, Dae Hyuk
    JOURNAL OF LABELLED COMPOUNDS & RADIOPHARMACEUTICALS, 2008, 51 (1-2): : 80 - 82
  • [46] 3'-deoxy-3'-[18F]fluorothymidine positron emission tomography for response assessment in soft tissue sarcoma
    Benz, Matthias R.
    Czernin, Johannes
    Allen-Auerbach, Martin S.
    Dry, Sarah M.
    Sutthiruangwong, Piriya
    Spick, Claudio
    Radu, Caius
    Weber, Wolfgang A.
    Tap, William D.
    Eilber, Fritz C.
    CANCER, 2012, 118 (12) : 3135 - 3144
  • [47] Monitoring Tumor Response After Histone Deacetylase Inhibitor Treatment Using 3'-Deoxy-3'-[18F]-fluorothymidine PET
    Chan, Pei-Chia
    Wu, Chun-Yi
    Chou, Lin-Shan
    Ho, Chung-Hsien
    Chang, Chi-Wei
    Chiou, Shih-Hwa
    Lin, Wuu-Jyh
    Chen, Fu-Du
    Chang, C. Allen
    Hwang, Jeng-Jong
    Liu, Ren-Shyan
    Wang, Hsin-Ell
    MOLECULAR IMAGING AND BIOLOGY, 2015, 17 (03) : 394 - 402
  • [48] An Evaluation of 2-deoxy-2-[18F]Fluoro-D-Glucose and 3'-deoxy-3'-[18F]-Fluorothymidine Uptake in Human Tumor Xenograft Models
    Keen, Heather
    Pichler, Bernd
    Kukuk, Damaris
    Duchamp, Olivier
    Raguin, Olivier
    Shannon, Aoife
    Whalley, Nichola
    Jacobs, Vivien
    Bales, Juliana
    Gingles, Neill
    Ricketts, Sally-Ann
    Wedge, Stephen R.
    MOLECULAR IMAGING AND BIOLOGY, 2012, 14 (03) : 355 - 365
  • [49] WHOLE-BODY BIODISTRIBUTION OF 3′-DEOXY-3′-[18F]FLUOROTHYMIDINE (18FLT) IN HEALTHY ADULT CATS
    Rowe, Joshua A.
    Morandi, Federica
    Wall, Jonathan S.
    Akula, Murthy
    Kennel, Stephen J.
    Osborne, Dustin
    Martin, Emily B.
    Galyon, Gina D.
    Long, Misty J.
    Stuckey, Alan C.
    LeBlanc, Amy K.
    VETERINARY RADIOLOGY & ULTRASOUND, 2013, 54 (03) : 299 - 306
  • [50] Potential impact of [18F]3'-deoxy-3'-fluorothymidine versus [18F]fluoro-2-deoxy-d-glucose in positron emission tomography for colorectal cancer
    D. L. Francis
    D. Visvikis
    D. C. Costa
    T. H. A. Arulampalam
    C. Townsend
    S. K. Luthra
    I. Taylor
    P. J. Ell
    European Journal of Nuclear Medicine and Molecular Imaging, 2003, 30 : 988 - 994