Pisaneschi Federica, Kelderhouse Lindsay E, Hardy Amanda, Engel Brian J, Mukhopadhyay Uday, Gonzalez-Lepera Carlos, Gray Joshua P, Ornelas Argentina, Takahashi Terry T, Roberts Richard W, Fiacco Stephen V, Piwnica-Worms David, Millward Steven W
EvoRx Technologies , 129 North Hill Avenue, Suite 103 Pasadena, California 91106, United States.
Department of Chemistry, University of Southern California , 3710 McClintock Avenue, Los Angeles, California 90089, United States.
Bioconjug Chem. 2017 Feb 15;28(2):583-589. doi: 10.1021/acs.bioconjchem.6b00678. Epub 2017 Feb 2.
Radiolabeling of substrates with 2-[F]fluoroethylazide exploits the rapid kinetics, chemical selectivity, and mild conditions of the copper-catalyzed azide-alkyne cycloaddition reaction. While this methodology has proven to result in near-quantitative labeling of alkyne-tagged precursors, the relatively small size of the fluoroethylazide group makes separation of the F-labeled radiotracer and the unreacted precursor challenging, particularly with precursors >500 Da (e.g., peptides). We have developed an inexpensive azide-functionalized resin to rapidly remove unreacted alkyne precursor following the fluoroethylazide labeling reaction and integrated it into a fully automated radiosynthesis platform. We have carried out 2-[F]fluoroethylazide labeling of four different alkynes ranging from <300 Da to >1700 Da and found that >98% of the unreacted alkyne was removed in less than 20 min at room temperature to afford the final radiotracers at >99% radiochemical purity with specific activities up to >200 GBq/μmol. We have applied this technique to label a novel cyclic peptide previously evolved to bind the Her2 receptor with high affinity, and demonstrated tumor-specific uptake and low nonspecific background by PET/CT. This resin-based methodology is automated, rapid, mild, and general allowing peptide-based fluorine-18 radiotracers to be obtained with clinically relevant specific activities without chromatographic separation and with only a minimal increase in total synthesis time.
用2-[F]氟乙基叠氮化物对底物进行放射性标记利用了铜催化的叠氮化物-炔烃环加成反应的快速动力学、化学选择性和温和条件。虽然这种方法已被证明能使炔烃标记的前体实现近乎定量的标记,但氟乙基叠氮基团相对较小,使得F标记的放射性示踪剂与未反应的前体的分离具有挑战性,尤其是对于分子量大于500 Da的前体(如肽)。我们开发了一种廉价的叠氮官能化树脂,用于在氟乙基叠氮标记反应后快速去除未反应的炔烃前体,并将其集成到一个全自动放射性合成平台中。我们对四种分子量从小于300 Da到大于1700 Da的不同炔烃进行了2-[F]氟乙基叠氮标记,发现在室温下不到20分钟内,超过98%的未反应炔烃被去除,最终得到的放射性示踪剂的放射化学纯度大于99%,比活度高达大于200 GBq/μmol。我们已应用该技术对一种先前经过进化以高亲和力结合Her2受体的新型环肽进行标记,并通过PET/CT证明了其肿瘤特异性摄取和低非特异性背景。这种基于树脂的方法是自动化的、快速的、温和的且通用的,能够在不进行色谱分离且总合成时间仅略有增加的情况下,以临床相关的比活度获得基于肽的氟-18放射性示踪剂。