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内酯化作为一种通用的β-C(sp)-H 官能化途径。

Lactonization as a general route to β-C(sp)-H functionalization.

机构信息

Department of Chemistry, The Scripps Research Institute, La Jolla, CA, USA.

出版信息

Nature. 2020 Jan;577(7792):656-659. doi: 10.1038/s41586-019-1859-y. Epub 2019 Dec 11.

Abstract

Functionalization of the β-C-H bonds of aliphatic acids is emerging as a valuable synthetic disconnection that complements a wide range of conjugate addition reactions. Despite efforts for β-C-H functionalization in carbon-carbon and carbon-heteroatom bond-forming reactions, these have numerous crucial limitations, especially for industrial-scale applications, including lack of mono-selectivity, use of expensive oxidants and limited scope. Notably, the majority of these reactions are incompatible with free aliphatic acids without exogenous directing groups. Considering the challenge of developing C-H activation reactions, it is not surprising that achieving different transformations requires independent catalyst design and directing group optimizations in each case. Here we report a Pd-catalysed β-C(sp)-H lactonization of aliphatic acids enabled by a mono-N-protected β-amino acid ligand. The highly strained and reactive β-lactone products are versatile linchpins for the mono-selective installation of diverse alkyl, alkenyl, aryl, alkynyl, fluoro, hydroxyl and amino groups at the β position of the parent acid, thus providing a route to many carboxylic acids. The use of inexpensive tert-butyl hydrogen peroxide as the oxidant to promote the desired selective reductive elimination from the Pd(IV) centre, as well as the ease of product purification without column chromatography, render this reaction amenable to tonne-scale manufacturing.

摘要

脂肪族酸的β-C-H 键功能化作为一种有价值的合成切断方法,补充了广泛的共轭加成反应。尽管在碳-碳和碳-杂原子键形成反应中进行了β-C-H 功能化的努力,但这些方法存在许多关键的局限性,特别是在工业规模的应用中,包括缺乏单选择性、使用昂贵的氧化剂和有限的范围。值得注意的是,这些反应中的大多数与没有外源导向基团的游离脂肪族酸不兼容。考虑到开发 C-H 活化反应的挑战,开发不同的转化需要在每种情况下独立设计催化剂和优化导向基团,这并不奇怪。在这里,我们报告了一种由单 N-保护的β-氨基酸配体促进的钯催化的脂肪族酸的β-C(sp)-H 内酯化。高度应变和反应性的β-内酯产物是单选择性安装不同烷基、烯基、芳基、炔基、氟、羟基和氨基在母体酸β位的多功能关键,从而为许多羧酸提供了一条途径。使用廉价的叔丁基过氧化氢作为氧化剂来促进所需的从 Pd(IV)中心的选择性还原消除,以及无需柱层析即可轻松进行产物纯化,使该反应适用于吨级制造。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0c85/6994389/775bfb3af6c3/nihms-1544683-f0001.jpg

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