Steven Alan, Overman Larry E
AstraZeneca Global Process R&D, Avlon Works, Severn Road, Hallen, Bristol, BS10 7ZE, UK.
Angew Chem Int Ed Engl. 2007;46(29):5488-508. doi: 10.1002/anie.200700612.
Our ability to access the more complex members of the cyclotryptamine family of alkaloids, and to exploit their disparate biological activities, is limited by the synthetic challenge posed by their oligomeric, polyindoline structures. A recurring structural theme within these molecules is the presence of multiple quaternary stereocenters in close proximity to one another. Over the last decade, we have developed a set of transformations that allow rapid access to polyindolines, a number of which exploit the ability of catalytic levels of palladium to orchestrate carbon-carbon bond formation with impressive levels of regio- and stereocontrol. This review tells the story behind the development of this toolbox of synthetic methods, and their validation through the total synthesis of a number of structurally complex cyclotryptamine alkaloids. It also highlights an aspect of asymmetric catalysis that has received little attention, the ability of catalytic asymmetric reactions to selectively elaborate complex, polyfunctional molecules.
我们获取色胺酮类生物碱家族中更复杂成员并利用其不同生物活性的能力,受到其低聚、聚吲哚啉结构所带来的合成挑战的限制。这些分子中一个反复出现的结构特征是多个季碳立体中心彼此紧邻。在过去十年中,我们开发了一系列转化反应,能够快速合成聚吲哚啉,其中一些反应利用催化量的钯促成碳 - 碳键形成,具有令人印象深刻的区域和立体控制水平。本综述讲述了这个合成方法工具箱的开发背后的故事,以及通过全合成多种结构复杂的色胺酮生物碱对其进行的验证。它还强调了不对称催化中一个很少受到关注的方面,即催化不对称反应选择性构建复杂多官能分子的能力。