Yagi Yusuke, Shimizu Yoichi, Arimitsu Kenji, Nakamoto Yuji, Higuchi Takahiro, Togashi Kaori, Kimura Hiroyuki
Department of Analytical and Bioinorganic Chemistry, Kyoto Pharmaceutical University, Kyoto, Japan.
Department of Radiology, Kyoto University Hospital, Kyoto, Japan.
J Labelled Comp Radiopharm. 2019 Mar;62(3):132-138. doi: 10.1002/jlcr.3704. Epub 2019 Jan 16.
Gallium-68 ( Ga, t = 68 min) can be easily obtained from a Ge/ Ga generator, and several such systems are commercially available. The use of positron emission tomography (PET) imaging using Ga-labeled radiopharmaceuticals is expected to increase in both preclinical and clinical settings. However, the chelation between a Ga cation and the bifunctional macrocyclic chelates that are used for labeling bioactive substances, such as 1,4,7,10-tetraazacyclododecane-1,4,7,10-tetraacetic acid (DOTA), requires a relatively long reaction time and high temperature to achieve a high radiochemical yield. Previously, we reported on a novel resonant-type microwave reactor that can be used for radiosynthesis and the usefulness of this reactor in the PET radiosynthesis of F. In the present study, the usefulness of this resonant-type microwave reactor was evaluated for the radiolabeling of model macrocyclic chelates with Ga. As a result, microwave heating of resonant-type microwave reactor notably improved the rate of the Ga labeling chelate reaction in a short time period of 2 minutes, compared with the use of a conventional heating method. Additionally, it was found that the use of this reactor made it possible to decrease the amount of precursors required in the reaction and to improve the molar activity of the labeled compounds.
镓 - 68((^{68}Ga),半衰期(t_{1/2}=68)分钟)可以很容易地从(^{68}Ge/^{68}Ga)发生器中获得,并且有几种这样的系统在市场上有售。使用(^{68}Ga)标记的放射性药物进行正电子发射断层扫描(PET)成像在临床前和临床环境中的应用预计都会增加。然而,(^{68}Ga)阳离子与用于标记生物活性物质的双功能大环螯合剂(如1,4,7,10 - 四氮杂环十二烷 - 1,4,7,10 - 四乙酸(DOTA))之间的螯合反应需要相对较长的反应时间和较高的温度才能获得高放射化学产率。此前,我们报道了一种可用于放射性合成的新型共振型微波反应器以及该反应器在(^{18}F)的PET放射性合成中的实用性。在本研究中,评估了这种共振型微波反应器用于用(^{68}Ga)对模型大环螯合物进行放射性标记的实用性。结果表明,与使用传统加热方法相比,共振型微波反应器的微波加热在短短2分钟内显著提高了(^{68}Ga)标记螯合反应的速率。此外,还发现使用该反应器可以减少反应中所需前体的量,并提高标记化合物的摩尔活性。