Discovery Chemistry and Molecular Technologies Bristol-Myers Squibb Research and Development P.O. Box 4000, Princeton , New Jersey 08543-4000 , United States.
J Med Chem. 2018 Jul 26;61(14):5822-5880. doi: 10.1021/acs.jmedchem.7b01788. Epub 2018 Feb 5.
The electronic properties and relatively small size of fluorine endow it with considerable versatility as a bioisostere and it has found application as a substitute for lone pairs of electrons, the hydrogen atom, and the methyl group while also acting as a functional mimetic of the carbonyl, carbinol, and nitrile moieties. In this context, fluorine substitution can influence the potency, conformation, metabolism, membrane permeability, and P-gp recognition of a molecule and temper inhibition of the hERG channel by basic amines. However, as a consequence of the unique properties of fluorine, it features prominently in the design of higher order structural metaphors that are more esoteric in their conception and which reflect a more sophisticated molecular construction that broadens biological mimesis. In this Perspective, applications of fluorine in the construction of bioisosteric elements designed to enhance the in vitro and in vivo properties of a molecule are summarized.
氟原子具有独特的电子性质和较小的原子半径,使其成为生物等排体的理想选择。氟原子可以替代孤对电子、氢原子和甲基,同时还可以模拟羰基、醇和腈基等官能团。在这种情况下,氟原子的取代可以影响分子的活性、构象、代谢、膜通透性和 P-糖蛋白的识别,并调节碱性胺对 hERG 通道的抑制作用。然而,由于氟原子的独特性质,它在更高阶结构隐喻的设计中扮演着重要的角色,这些隐喻在概念上更加深奥,反映了更复杂的分子结构,从而拓宽了生物模拟的范围。在本文中,总结了氟原子在构建生物等排体元素中的应用,这些元素旨在增强分子的体外和体内性质。