Institute of Organic Chemistry, RWTH Aachen University, Aachen, Germany.
Nature. 2019 Sep;573(7772):102-107. doi: 10.1038/s41586-019-1518-3. Epub 2019 Sep 4.
Amides and related carbonyl derivatives are of central importance across the physical and life sciences. As a key biological building block, the stability and conformation of amides affect the structures of peptides and proteins as well as their biological function. In addition, amide-bond formation is one of the most frequently used chemical transformations. Given their ubiquity, a technology that is capable of modifying the fundamental properties of amides without compromising on stability may have considerable potential in pharmaceutical, agrochemical and materials science. In order to influence the physical properties of organic molecules-such as solubility, lipophilicity, conformation, pK and (metabolic) stability-fluorination approaches have been widely adopted. Similarly, site-specific modification with isosteres and peptidomimetics, or in particular by N-methylation, has been used to improve the stability, physical properties, bioactivities and cellular permeabilities of compounds. However, the N-trifluoromethyl carbonyl motif-which combines both N-methylation and fluorination approaches-has not yet been explored, owing to a lack of efficient methodology to synthesize it. Here we report a straightforward method to access N-trifluoromethyl analogues of amides and related carbonyl compounds. The strategy relies on the operationally simple preparation of bench-stable carbamoyl fluoride building blocks, which can be readily diversified to the corresponding N-CF amides, carbamates, thiocarbamates and ureas. This method tolerates rich functionality and stereochemistry, and we present numerous examples of highly functionalized compounds-including analogues of widely used drugs, antibiotics, hormones and polymer units.
酰胺和相关的羰基衍生物在物理和生命科学中都具有重要意义。作为一种关键的生物构建块,酰胺的稳定性和构象影响着肽和蛋白质的结构及其生物功能。此外,酰胺键的形成是最常用的化学转化之一。鉴于其普遍性,如果有一种技术能够在不影响稳定性的情况下改变酰胺的基本性质,那么它在制药、农化和材料科学领域可能具有相当大的潜力。为了影响有机分子的物理性质,如溶解度、亲脂性、构象、pK 和(代谢)稳定性,人们广泛采用氟化方法。同样,通过使用等排体和肽模拟物或特别是通过 N-甲基化进行的特异性位点修饰,也被用于提高化合物的稳定性、物理性质、生物活性和细胞通透性。然而,由于缺乏有效的合成方法,N-三氟甲羰基这一同时结合了 N-甲基化和氟化方法的 motif 尚未得到探索。在这里,我们报告了一种简单的方法来获得酰胺和相关羰基化合物的 N-三氟甲基类似物。该策略依赖于操作简单的稳定的氨基甲酰氟砌块的制备,这些砌块可以很容易地多样化为相应的 N-CF 酰胺、氨基甲酸酯、硫代氨基甲酸酯和脲。该方法能够容忍丰富的功能和立体化学,我们展示了许多高度功能化化合物的例子,包括广泛使用的药物、抗生素、激素和聚合物单元的类似物。