羧化
化学
格式化
背景(考古学)
体内分布
同位素标记
放射化学
二氧化碳
碳纤维
离子
碳同位素
纳米笼
组合化学
有机化学
催化作用
材料科学
总有机碳
生物化学
古生物学
复合数
体外
复合材料
生物
作者
Augustin Malandain,Maxime Molins,Alexandre Hauwelle,Alex Talbot,Olivier Loreau,Timothée D'Anfray,Sébastien Goutal,Nicolas Tournier,Frédéric Taran,Fabien Caillé,Davide Audisio
标识
DOI:10.26434/chemrxiv-2023-7cf9d
摘要
The need for carbon-labeled radiotracers is increasingly higher in drug discovery and development (carbon-14, -, t1/2 = 5730 years) as well as in PET, for in vivo molecular imaging applications (carbon-11, +, t1/2 = 20.4 min). However, the structural diversity of radiotracers is still systematically driven by the narrow available labeled sources and methodologies. In this context, the emergence of carbon dioxide radical anion chemistry might set forth potential unexplored opportunities. Based on a dynamic isotopic equilibration between formate salts and [13C, 14C, 11C]CO2, C-labeled radical anion CO2●- could be accessed under extremely mild conditions within seconds. This methodology was successfully applied to hydro-carboxylation and bis-carboxylation reactions in late-stage carbon isotope labeling of pharmaceutically relevant compounds. The relevance of the method in applied radiochemistry was showcased by the whole-body PET biodistribution profile of [11C]oxaprozin in mouse.
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