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Mechanistically Diverse Copper- Silver- and Gold- Catalyzed Acyloxy and Phosphatyloxy Migrations: Efficient Synthesis of Heterocycles via Cascade Migration/Cycloisomerization Approach

机译:机械上多样的铜银和金催化的酰氧基和磷酰氧基迁移:通过级联迁移/环异构化方法高效合成杂环

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摘要

A set of cycloisomerizaton methodologies of alkynyl ketones and imines with concurrent acyloxy, phosphatyloxy, or sulfonyloxy group migration, which allow for the efficient synthesis of multisubstituted furans and N-fused heterocycles has been developed. Investigation of the reaction course by way of employing 17O-labelled substrates allowed for elucidation of the mechanisms behind these diverse transformations. It was found that, while the phosphatyloxy migration in conjugated alkynyl imines in their cycloisomerization to N-fused pyrroles proceeded via a [3,3]-sigmatropic rearrangement, the analogous cycloisomerization of skipped alkynyl ketones proceeds through two consecutive 1,2-migrations, resulting in an apparent 1,3-shift, followed by a subsequent 1,2-migration through competitive oxirenium and dioxolenylium pathways. Investigations of the 1,2-acyloxy migration of conjugated alkynyl ketones en route to furans demonstrated the involvement of a dioxolenylium intermediate. The mechanism of cycloisomerization of skipped alkynyl ketones containing an acyloxy group was found to be catalyst dependent; Lewis and Brønsted acid catalysts caused an ionization/SN1' isomerization to the allene, followed by cycloisomerization to the furan, while transition metal-catalysts evoked a Rautenstrauch-type mechanistic pathway. Furthermore, control experiments in the cycloisomerization of skipped alkynyl ketones under transition metal catalysis revealed that, indeed, these reactions were catalyzed by transition metal complexes as opposed to Brønsted acids resulting from hydrolysis of these catalysts with eventual water. Further synthetic utility of the obtained phosphatyloxy-substituted heterocycles was demonstrated through their efficient employment in the Kumada cross-coupling reaction with various Grignard reagents.
机译:已经开发了一组炔基酮和亚胺具有同时的酰氧基,磷脂酰氧基或磺酰氧基迁移的环异构方法,该方法允许有效合成多取代的呋喃和N-稠合的杂环。通过使用 17 O标记的底物对反应过程进行研究,可以阐明这些不同转化背后的机制。已发现,虽然共轭炔亚胺中的磷脂酰氧基在其环异构化成N稠合吡咯的过程中是通过[3,3]-σ重排进行的,但类似的跳过的炔基酮的环异构化是通过两个连续的1,2-迁移进行的,导致明显的1,3移位,随后通过竞争性的oxirenium和dioxolenylium途径进行1,2迁移。对共轭炔基酮向呋喃的1,2-酰氧基迁移的研究表明,二氧戊烯鎓中间体参与其中。发现含有酰氧基的跳过的炔基酮的环异构化机理是催化剂依赖性的。 Lewis和Brønsted酸催化剂引起离子化/ SN1'异构化为丙二烯,然后环异构化为呋喃,而过渡金属催化剂则引发了Rautenstrauch型机理。此外,过渡金属催化下跳过的炔基酮的环异构化的对照实验表明,实际上,这些反应是由过渡金属络合物催化的,而不是由这些催化剂最终用水水解而产生的布朗斯台德酸。通过将它们有效地用于与各种格氏试剂的熊田交叉偶联反应中,证明了所获得的磷脂酰氧基取代的杂环的进一步合成效用。

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