Institut de Recherche en Cancérologie de Montpellier (IRCM), University of Montpellier, INSERM U1194, Montpellier Cancer Institute (ICM), 34298 Montpellier, France.
Nuclear Medicine Department, Montpellier Cancer Institute (ICM), University of Montpellier, 208 Avenue des Apothicaires, 34298 Montpellier CEDEX 5, France.
Molecules. 2019 Aug 7;24(16):2866. doi: 10.3390/molecules24162866.
Due to its ideal physical properties, fluorine-18 turns out to be a key radionuclide for positron emission tomography (PET) imaging, for both preclinical and clinical applications. However, usual biomolecules radiofluorination procedures require the formation of covalent bonds with fluorinated prosthetic groups. This drawback makes radiofluorination impractical for routine radiolabeling, gallium-68 appearing to be much more convenient for the labeling of chelator-bearing PET probes. In response to this limitation, a recent expansion of the F chemical toolbox gave aluminum [F]fluoride chemistry a real prominence since the late 2000s. This approach is based on the formation of an [F][AlF] cation, complexed with a 9-membered cyclic chelator such as NOTA, NODA or their analogs. Allowing a one-step radiofluorination in an aqueous medium, this technique combines fluorine-18 and non-covalent radiolabeling with the advantage of being very easy to implement. Since its first reports, [F]AlF radiolabeling approach has been applied to a wide variety of potential PET imaging vectors, whether of peptidic, proteic, or small molecule structure. Most of these [F]AlF-labeled tracers showed promising preclinical results and have reached the clinical evaluation stage for some of them. The aim of this report is to provide a comprehensive overview of [F]AlF labeling applications through a description of the various [F]AlF-labeled conjugates, from their radiosynthesis to their evaluation as PET imaging agents.
由于其理想的物理性质,氟-18 成为正电子发射断层扫描(PET)成像的关键放射性核素,无论是在临床前还是临床应用中。然而,通常的生物分子放射性标记程序需要与氟代拟肽基团形成共价键。这一缺点使得放射性标记对于常规标记来说不切实际,镓-68 似乎更适合用于带有螯合剂的 PET 探针的标记。针对这一限制,最近 F 化学工具箱的扩展使得铝[F]氟化物化学自 21 世纪末以来真正受到重视。该方法基于[F][AlF]阳离子的形成,与 NOTA、NODA 或其类似物等 9 元环螯合剂配位。允许在水介质中一步进行放射性标记,该技术将氟-18 和非共价放射性标记相结合,具有实施非常简单的优点。自首次报道以来,[F]AlF 放射性标记方法已应用于广泛的潜在 PET 成像载体,无论是肽、蛋白质还是小分子结构。这些[F]AlF 标记示踪剂中的大多数都显示出有前途的临床前结果,其中一些已经进入临床评估阶段。本报告的目的是通过描述各种[F]AlF 标记的缀合物,从它们的放射合成到它们作为 PET 成像剂的评估,提供对[F]AlF 标记应用的全面概述。