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(+)-截短侧耳素的定向碳氢键氧化

Directed C-H Bond Oxidation of (+)-Pleuromutilin.

作者信息

Ma Xiaoshen, Kucera Roman, Goethe Olivia F, Murphy Stephen K, Herzon Seth B

出版信息

J Org Chem. 2018 Jul 6;83(13):6843-6892. doi: 10.1021/acs.joc.8b00462. Epub 2018 May 1.

DOI:10.1021/acs.joc.8b00462
PMID:29664634
Abstract

Antibiotics derived from the diterpene fungal metabolite (+)-pleuromutilin (1) are useful agents for the treatment Gram-positive infections in humans and farm animals. Pleuromutilins elicit slow rates of resistance development and minimal cross-resistance with existing antibiotics. Despite efforts aimed at producing new derivatives by semisynthesis, modification of the tricyclic core is underexplored, in part due to a limited number of functional group handles. Herein, we report methods to selectively functionalize the methyl groups of (+)-pleuromutilin (1) by hydroxyl-directed iridium-catalyzed C-H silylation, followed by Tamao-Fleming oxidation. These reactions provided access to C16, C17, and C18 monooxidized products, as well as C15/C16 and C17/C18 dioxidized products. Four new functionalized derivatives were prepared from the protected C17 oxidation product. C6 carboxylic acid, aldehyde, and normethyl derivatives were prepared from the C16 oxidation product. Many of these sequences were executed on gram scales. The efficiency and practicality of these routes provides an easy method to rapidly interrogate structure-activity relationships that were previously beyond reach. This study will inform the design of fully synthetic approaches to novel pleuromutilins and underscores the power of the hydroxyl-directed iridium-catalyzed C-H silylation reaction.

摘要

源自二萜类真菌代谢产物(+)-截短侧耳素(1)的抗生素是治疗人类和农场动物革兰氏阳性感染的有效药物。截短侧耳素产生耐药性的速度较慢,且与现有抗生素的交叉耐药性最小。尽管人们致力于通过半合成生产新的衍生物,但三环核心的修饰仍未得到充分探索,部分原因是官能团处理的数量有限。在此,我们报告了通过羟基导向的铱催化C-H硅基化,然后进行玉尾-弗莱明氧化,选择性地将(+)-截短侧耳素(1)的甲基官能化的方法。这些反应提供了获得C16、C17和C18单氧化产物以及C15/C16和C17/C18双氧化产物的途径。从受保护的C17氧化产物制备了四种新的官能化衍生物。从C16氧化产物制备了C6羧酸、醛和去甲基衍生物。其中许多步骤都是以克级规模进行的。这些路线的效率和实用性提供了一种简单的方法来快速研究以前无法实现的构效关系。这项研究将为新型截短侧耳素的全合成方法设计提供信息,并强调羟基导向的铱催化C-H硅基化反应的强大作用。

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