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Mechanistic studies and radiofluorination of structurally diverse pharmaceuticals with spirocyclic iodonium(iii) ylides

机译:具有螺环碘鎓(iii)的结构多样的药物的机理研究和放射性氟化

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摘要

Synthesis of non-activated electron-rich and sterically hindered 18F-arenes remains a major challenge due to limitations of existing radiofluorination methodologies. Herein, we report on our mechanistic investigations of spirocyclic iodonium(iii) ylide precursors for arene radiofluorination, including their reactivity, selectivity, and stability with no-carrier-added [18F]fluoride. Benchmark calculations at the G2[ECP] level indicate that pseudorotation and reductive elimination at iodine(iii) can be modeled well by appropriately selected dispersion-corrected density functional methods. Modeling of the reaction pathways show that fluoride–iodonium(iii) adduct intermediates are strongly activated and highly regioselective for reductive elimination of the desired [18F]fluoroarenes (difference in barriers, ΔΔG > 25 kcal mol–1). The advantage of spirocyclic auxiliaries is further supported by NMR spectroscopy studies, which bolster evidence for underlying decomposition processes which can be overcome for radiofluorination of iodonium(iii) precursors. Using a novel adamantyl auxiliary, sterically hindered iodonium ylides have been developed to enable highly efficient radiofluorination of electron-rich arenes, including fragments of pharmaceutically relevant nitrogen-containing heterocycles and tertiary amines. Furthermore, this methodology has been applied for the syntheses of the radiopharmaceuticals 6-[18F]fluoro-meta-tyrosine ([18F]FMT, 11 ± 1% isolated radiochemical yield, non-decay-corrected (RCY, n.d.c.), n = 3), and meta-[18F]fluorobenzylguanidine ([18F]mFBG, 14 ± 1% isolated RCY, n.d.c., n = 3) which cannot be directly radiolabeled using conventional nucleophilic aromatic substitution with [18F]fluoride.
机译:由于现有的放射性氟化方法的局限性,非活化的富电子和空间受阻的 18 F芳烃的合成仍然是一个重大挑战。在此,我们报告了我们对螺环放射性氟化的螺环碘鎓(iii)ylide前体进行的机理研究,包括它们的反应性,选择性和不添加载体的[ 18 F]氟化物的稳定性。在G2 [ECP]水平的基准计算表明,可以通过适当选择的色散校正密度泛函方法很好地模拟碘(iii)上的假旋转和还原消除。反应途径的建模表明,氟-碘鎓(iii)加合物中间体被强烈激活并具有高度区域选择性,可还原性消除所需的[ 18 F]氟芳烃(障碍物差异,ΔΔG‡< / sup 25 kcal mol –1 )。 NMR光谱学研究进一步证明了螺环辅助剂的优势,这为潜在的分解过程提供了证据,而碘化氢(iii)前体的放射性氟化可以克服这些分解过程。使用新型的金刚烷基助剂,已经开发出了位阻碘鎓烷基化物,以实现富电子芳烃的高效放射性氟化,所述富电子芳烃包括药学上相关的含氮杂环和叔胺的片段。此外,该方法已用于放射性药物6-[ 18 F]氟间酪氨酸([ 18 F] FMT的合成,分离度为11±1%放射性化学收率,未衰减校正(RCY,ndc),n = 3)和间-[ 18 F]氟苄基胍([ 18 F] mFBG,14± 1%分离的RCY,ndc,n = 3),不能使用[ 18 F]氟化物进行常规亲核芳族取代直接进行放射性标记。

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