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基于磺酰氟的拟肽化合物作为潜在的 18F 标记试剂。

Sulfonyl fluoride-based prosthetic compounds as potential 18F labelling agents.

机构信息

Department of Nuclear Medicine, TRIUMF, 4004 Wesbrook Mall, Vancouver, British Columbia, Canada.

出版信息

Chemistry. 2012 Aug 27;18(35):11079-87. doi: 10.1002/chem.201103450. Epub 2012 Jul 17.

DOI:10.1002/chem.201103450
PMID:22807282
Abstract

Nucleophilic incorporation of [(18)F]F(-) under aqueous conditions holds several advantages in radiopharmaceutical development, especially with the advent of complex biological pharmacophores. Sulfonyl fluorides can be prepared in water at room temperature, yet they have not been assayed as a potential means to (18)F-labelled biomarkers for PET chemistry. We developed a general route to prepare bifunctional 4-formyl-, 3-formyl-, 4-maleimido- and 4-oxylalkynl-arylsulfonyl [(18)F]fluorides from their sulfonyl chloride analogues in 1:1 mixtures of acetonitrile, THF, or tBuOH and Cs[(18)F]F/Cs(2)CO(3(aq.)) in a reaction time of 15 min at room temperature. With the exception of 4-N-maleimide-benzenesulfonyl fluoride (3), pyridine could be used to simplify radiotracer purification by selectively degrading the precursor without significantly affecting observed yields. The addition of pyridine at the start of [(18)F]fluorination (1:1:0.8 tBuOH/Cs(2)CO(3(aq.))/pyridine) did not negatively affect yields of 3-formyl-2,4,6-trimethylbenzenesulfonyl [(18)F]fluoride (2) and dramatically improved the yields of 4-(prop-2-ynyloxy)benzenesulfonyl [(18)F]fluoride (4). The N-arylsulfonyl-4-dimethylaminopyridinium derivative of 4 (14) can be prepared and incorporates (18)F efficiently in solutions of 100 % aqueous Cs(2)CO(3) (10 mg mL(-1)). As proof-of-principle, [(18)F]2 was synthesised in a preparative fashion [88(±8) % decay corrected (n=6) from start-of-synthesis] and used to radioactively label an oxyamino-modified bombesin(6-14) analogue [35(±6) % decay corrected (n=4) from start-of-synthesis]. Total preparation time was 105-109 min from start-of-synthesis. Although the (18)F-peptide exhibited evidence of proteolytic defluorination and modification, our study is the first step in developing an aqueous, room temperature (18)F labelling strategy.

摘要

在水相条件下进行[(18)F]F(-)的亲核加成具有许多优势,特别是在复杂的生物药效团出现之后。磺酰氟可以在室温下于水中制备,但尚未被评估为用于 PET 化学的(18)F 标记生物标志物的潜在手段。我们开发了一种从其磺酰氯类似物制备双功能 4-甲酰基、3-甲酰基、4-马来酰亚胺基和 4-氧代炔基-芳基磺酰[(18)F]氟化物的一般方法,在 15 分钟的反应时间内,在室温下于 1:1 的乙腈、THF 或叔丁醇与 Cs[(18)F]F/Cs2CO3(aq)混合物中进行反应。除了 4-N-马来酰亚胺苯磺酰氟(3)之外,吡啶可以通过选择性降解前体而无需显著影响观察到的产率来简化放射性示踪剂的纯化。在[(18)F]氟化(1:1:0.8 叔丁醇/Cs2CO3(aq)/吡啶)开始时添加吡啶不会对 3-甲酰基-2,4,6-三甲苯磺酰[(18)F]氟化物(2)的产率产生负面影响,并大大提高了 4-(丙-2-炔氧基)苯磺酰[(18)F]氟化物(4)的产率。4 的 N-芳基磺酰基-4-二甲基氨基吡啶鎓衍生物 14 可以制备,并在 100%水合 Cs2CO3(10 mg mL(-1))溶液中有效地掺入(18)F。作为原理证明,以制备方式合成了[(18)F]2[从起始合成开始的 88(±8)%衰变校正(n=6)],并用于放射性标记氧氨基修饰的 bombesin(6-14)类似物[从起始合成开始的 35(±6)%衰变校正(n=4)]。从起始合成开始,总制备时间为 105-109 分钟。尽管(18)F-肽显示出蛋白水解脱氟和修饰的证据,但我们的研究是开发水相、室温(18)F 标记策略的第一步。

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