[18F]的自动化和首次评估FE@SUPPY:2,一种替代的pet示踪剂用于腺苷A3受体:与[18F]FE@SUPPY的比较

M. Mitterhauser, D. Haeusler, L. Mien, J. Ungersboeck, L. Nics, R. Lanzenberger, K. Sindelar, H. Viernstein, R. Dudczak, K. Kletter, H. Spreitzer, W. Wadsak
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引用次数: 8

摘要

自20世纪90年代末腺苷- a3受体被发现以来,很少有数据描述其在体内的分布。最近,我们引入了(18f)FE@SUPPY作为该受体的第一个pet示踪剂。在本研究中,我们将这种氟乙基酯转化为氟乙基硫酯(18 F)FE@SUPPY:2(5-乙基2,4-二乙基-3-(2-(18 F)氟乙基)磺酰基羰基)-6-苯基吡啶-5-羧酸盐)。本研究的目的是评价(1)(18f)FE@SUPPY-derivatives的自动化制备,(2)(18f)FE@SUPPY:2的生物分布,(3)亲脂性,(4)(18f)FE@SUPPY和(18f)FE@SUPPY:2的结果比较。方法:采用合适的前体,在GE TRACERlab FxFN合成机上自动制备(18f)FE@SUPPY-analogs。采用Sprague-Dawley大鼠/Him:OFA进行生物分布实验。采用高效液相色谱法测定化合物的亲脂性。结果:两种示踪剂共进行了22次自动放射性合成。(18 F)FE@SUPPY的比放射性为70±26GBq/ μ mol, (18 F)FE@SUPPY:2的比放射性为340±140GBq/ μ mol。生物分布实验表明,肠道和肝脏是摄取最高的器官,肾、肺和心脏是中等的。两种分子在不同ph值下的LogP值范围为3.99 ~ 4.12。结论:从放射性药物的角度来看,显著提高的比放射性将有利于(18 F)FE@SUPPY:2;到目前为止,临床前评估不允许选择最佳(18f)FE@SUPPY-derivative。通过(18 F)FE@SUPPY:2,我们能够提供第二种潜在的示踪剂,可以帮助进一步表征尚未开发的腺苷- a3受体。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Automatisation and First Evaluation of [18F]FE@SUPPY:2, an AlternativePET-Tracer for the Adenosine A3 Receptor: A Comparison with[18F]FE@SUPPY
Introduction: Since the Adenosine-A3-receptor was identified in the late 1990´s, there is little data available de- scribing its distribution in vivo. Recently, we introduced ( 18 F)FE@SUPPY as the first PET-tracer for this receptor. In the present investigation we translated this fluoroethyl-ester into the fluoroethyl-thioester ( 18 F)FE@SUPPY:2 (5-ethyl 2,4- diethyl-3-((2-( 18 F)fluoroethyl) sulfanylcarbonyl)-6-phenylpyridine-5-carboxylate). Aims of the present study were the evaluation of (1) the automatized preparation of both ( 18 F)FE@SUPPY-derivatives, (2) the biodistribution of ( 18 F)FE@SUPPY:2, (3) the lipophilicity and (4) the comparison of the findings of ( 18 F)FE@SUPPY and ( 18 F)FE@SUPPY:2. Methods: The automated preparations of both ( 18 F)FE@SUPPY-analogs were performed on a GE TRACERlab FxFN syn- thesizer using suitable precursors. Biodistribution experiments were performed using Sprague-Dawley rats/Him:OFA. Lipophilicity of the compounds was determined using an HPLC assay. Results: 22 automated radiosyntheses were performed for both radiotracers. Specific radioactivity was 70 ± 26GBq/� mol for ( 18 F)FE@SUPPY and 340 ± 140GBq/� mol for ( 18 F)FE@SUPPY:2. Biodistribution experiments evinced bowels and liver as organs with highest uptake and intermediate uptake in kidney, lung and heart. LogP values of both molecules ranged from 3.99 to 4.12 at different pH. Conclusion: From a radiopharmaceutical perspective, drastically better specific radioactivities would militate in favour of ( 18 F)FE@SUPPY:2; preclinical evaluations, so far, do not permit the decision upon the selection of the optimum ( 18 F)FE@SUPPY-derivative. With ( 18 F)FE@SUPPY:2, we are able to provide a second potential tracer that could help to further characterize the still quite unexplored Adenosine-A3-receptor.
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