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通过 Morita-Baylis-Hillman 乙酸酯的多米诺反应合成二氢喹啉、二氢萘啶和喹诺酮。

Dihydroquinolines, Dihydronaphthyridines and Quinolones by Domino Reactions of Morita-Baylis-Hillman Acetates.

机构信息

Department of Chemistry, Oklahoma State University, Stillwater, OK 74078-3071, USA.

出版信息

Molecules. 2021 Feb 8;26(4):890. doi: 10.3390/molecules26040890.

Abstract

An efficient synthetic route to highly substituted dihydroquinolines and dihydronaphthyridines has been developed using a domino reaction of Morita-Baylis-Hillman (MBH) acetates with primary aliphatic and aromatic amines in DMF at 50-90 °C. The MBH substrates incorporate a side chain acetate positioned adjacent to an acrylate or acrylonitrile aza-Michael acceptor as well as an aromatic ring activated toward SAr ring closure. A control experiment established that the initial reaction was an S2'-type displacement of the side chain acetate by the amine to generate the alkene product with the added nitrogen nucleophile positioned trans to the SAr aromatic ring acceptor. Thus, equilibration of the initial alkene geometry is required prior to cyclization. A further double bond migration was observed for several reactions targeting dihydronaphthyridines from substrates with a side chain acrylonitrile moiety. MBH acetates incorporating a 2,5-difluorophenyl moiety were found to have dual reactivity in these annulations. In the absence of O, the expected dihydroquinolines were formed, while in the presence of O, quinolones were produced. All of the products were isolated in good to excellent yields (72-93%). Numerous cases (42) are reported, and mechanisms are discussed.

摘要

一种高效的合成高度取代的二氢喹啉和二氢萘啶的方法已经被开发出来,该方法使用多米诺反应,将 Morita-Baylis-Hillman(MBH)乙酸盐与伯脂肪族和芳香族胺在 DMF 中于 50-90°C 下反应。MBH 底物包含一个位于丙烯酸盐或丙烯腈氮亲核试剂相邻位置的侧链乙酸盐,以及一个对 SAr 环闭合具有活性的芳环。一个对照实验确定,初始反应是侧链乙酸盐被胺取代的 S2'型取代反应,生成带有额外氮亲核试剂的烯烃产物,该亲核试剂位于 SAr 芳环受体的反式位置。因此,在环化之前,需要平衡初始烯烃的几何形状。对于几种从带有侧链丙烯腈部分的底物中目标为二氢萘啶的反应,观察到进一步的双键迁移。发现带有 2,5-二氟苯基部分的 MBH 乙酸盐在这些环化反应中具有双重反应性。在没有 O 的情况下,形成了预期的二氢喹啉,而在有 O 的情况下,生成了喹诺酮。所有产物的分离产率都很好,达到 72-93%。报道了许多情况(42 个),并讨论了其机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c004/7914960/b230d8bda7cd/molecules-26-00890-g001a.jpg

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