Hübner Ralph, von Kiedrowski Valeska, Benkert Vanessa, Wängler Björn, Schirrmacher Ralf, Krämer Roland, Wängler Carmen
Biomedical Chemistry, Department of Clinical Radiology and Nuclear Medicine, Medical Faculty Mannheim of Heidelberg University, Theodor-Kutzer-Ufer 1-3, 68167 Mannheim, Germany.
Molecular Imaging and Radiochemistry, Department of Clinical Radiology and Nuclear Medicine, Medical Faculty Mannheim of Heidelberg University, Theodor-Kutzer-Ufer 1-3, 68167 Mannheim, Germany.
Pharmaceuticals (Basel). 2020 Sep 16;13(9):250. doi: 10.3390/ph13090250.
The development of hybrid multimodal imaging synthons (MIS), carrying in addition to a chelator for radiometal labeling also a near-infrared (NIR) fluorescent cyanine dye was the aim of this work. The MIS should be introducible into biomolecules of choice via an efficient and chemoselective click chemistry reaction. After chemical optimization, a successful synthetic strategy towards such hybrid MIS was developed, based on solid phase-based synthesis techniques and applying different near-infrared fluorescent cyanine dyes. The developed hybrid agents were shown to be easily introducible into a model homobivalent peptidic gastrin-releasing peptide receptor- (GRPR)-specific carrier without forming any side products and the MIS as well as their bioconjugates were radiolabeled with the positron-emitter Ga. The hybrid multimodal agents were characterized with regard to their logs, GRPR target affinities and photophysical characteristics. It could be shown that the properties of the bioconjugates were not per se affected by the introduction of the MIS but that the cyanine dye used and specifically the number of comprised negative charges per dye molecule can have a considerable influence on target receptor binding. Thus, the molecular toolbox described here enables the synthesis of tailored hybrid multimodal imaging synthons for biomolecule modification, meeting the specific need and envisioned application of the combined imaging agent.
本研究的目标是开发一种混合多模态成像合成子(MIS),除了用于放射性金属标记的螯合剂外,还携带一种近红外(NIR)荧光花青染料。MIS应通过高效且具有化学选择性的点击化学反应引入到选定的生物分子中。经过化学优化,基于固相合成技术并应用不同的近红外荧光花青染料,开发出了一种成功合成此类混合MIS的策略。已证明所开发的混合试剂可轻松引入到一种同二价肽胃泌素释放肽受体(GRPR)特异性载体模型中,且不形成任何副产物,同时MIS及其生物缀合物用正电子发射体镓进行了放射性标记。对混合多模态试剂的logP、GRPR靶点亲和力和光物理特性进行了表征。结果表明,生物缀合物的性质本身不会受到MIS引入的影响,但所用的花青染料,特别是每个染料分子所含负电荷的数量,会对靶点受体结合产生相当大的影响。因此,本文所述的分子工具箱能够合成用于生物分子修饰的定制化混合多模态成像合成子,满足联合成像剂的特定需求和预期应用。