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拓展多氧化环丁烷中催化C-H胺化反应的极限

Pushing the limits of catalytic C-H amination in polyoxygenated cyclobutanes.

作者信息

Nocquet Pierre-Antoine, Hensienne Raphaël, Wencel-Delord Joanna, Laigre Eugénie, Sidelarbi Khadidja, Becq Frédéric, Norez Caroline, Hazelard Damien, Compain Philippe

机构信息

Laboratoire de Synthèse Organique et Molécules Bioactives (SYBIO), Université de Strasbourg/CNRS (UMR 7509), Ecole Européenne de Chimie, Polymères et Matériaux (ECPM), 25 rue Becquerel, 67087 Strasbourg, France.

Laboratoire Signalisation et Transports Ioniques Membranaires (STIM), Université de Poitiers et CNRS (ERL7368), 1 rue Georges Bonnet, 86000 Poitiers, France.

出版信息

Org Biomol Chem. 2016 Mar 7;14(9):2780-96. doi: 10.1039/c5ob02602d.

DOI:10.1039/c5ob02602d
PMID:26860404
Abstract

A synthetic route to a new class of conformationally constrained iminosugars based on a 5-azaspiro[3.4]octane skeleton has been developed by way of Rh(ii)-catalyzed C(sp(3))-H amination. The pivotal stereocontrolled formation of the quaternary C-N bond by insertion into the C-H bonds of the cyclobutane ring was explored with a series of polyoxygenated substrates. In addition to anticipated regioselective issues induced by the high density of activated α-ethereal C-H bonds, this systematic study showed that cyclobutane C-H bonds were, in general, poorly reactive towards catalytic C-H amination. This was demonstrated inter alia by the unexpected formation of a oxathiazonane derivative, which constitutes a very rare example of the formation of a 9-membered ring by way of catalyzed C(sp(3))-H amination. A complete stereocontrol could be however achieved by activating the key insertion position as an allylic C-H bond in combination with reducing the electron density at the undesired C-H insertion sites by using electron-withdrawing protecting groups. Preliminary biological evaluations of the synthesized spiro-iminosugars were performed, which led to the identification of a new class of correctors of the defective F508del-CFTR gating involved in cystic fibrosis.

摘要

通过铑(II)催化的C(sp(3))-H胺化反应,已开发出一条基于5-氮杂螺[3.4]辛烷骨架的新型构象受限亚氨基糖的合成路线。利用一系列多氧化底物探索了通过插入环丁烷环的C-H键实现季碳-氮键的关键立体控制形成。除了由高密度的活化α-醚键C-H键引起的预期区域选择性问题外,该系统研究表明,环丁烷的C-H键通常对催化C-H胺化反应的反应性较差。这尤其体现在意外形成的氧杂噻唑烷衍生物上,这是通过催化C(sp(3))-H胺化反应形成九元环的非常罕见的例子。然而,通过将关键插入位置作为烯丙基C-H键进行活化,并通过使用吸电子保护基团降低不需要的C-H插入位点处的电子密度,可以实现完全的立体控制。对合成的螺亚氨基糖进行了初步生物学评估,从而鉴定出一类新的参与囊性纤维化的F508del-CFTR门控缺陷校正剂。

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ACS Omega. 2017 Oct 31;2(10):7203-7218. doi: 10.1021/acsomega.7b01299. Epub 2017 Oct 26.