4.8 Article

Stereodivergent synthesis of enantioenriched azepino[3,4,5-cd]-indoles via cooperative Cu/Ir-catalyzed asymmetric allylic alkylation and intramolecular Friedel-Crafts reaction

Journal

CHEMICAL SCIENCE
Volume 13, Issue 17, Pages 4801-4812

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/d1sc07271d

Keywords

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Funding

  1. NSFC [220711186, 220711187, 22073067]
  2. Hubei Province Natural Science Foundation [2020CFA036, 2021CFA069]
  3. Program of Introducing Talents of Discipline to Universities of China (111 Project)

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This study reports an efficient catalytic asymmetric formal 1,3-dipolar cycloaddition reaction for the construction of azepino[3,4,5-cd]-indoles fused with a challenging seven-membered N-heterocycle. The full stereodivergence of this transformation was established via synergistic catalysis followed by acid-promoted epimerization, which allows predictable access to multiple stereoisomers.
The development of enantioselective annulation reactions using readily available substrates for the construction of structurally and stereochemically diverse heterocycles is a compelling topic in diversity-oriented synthesis. Herein, we report efficient catalytic asymmetric formal 1,3-dipolar (3 + 4) cycloadditions of azomethine ylides with 4-indolyl allylic carbonates for the construction of azepino[3,4,5-cd]-indoles fused with a challenging seven-membered N-heterocycle, a frequently occurring tricyclic indole scaffold in bioactive compounds and pharmaceuticals. Through cooperative Cu/Ir-catalyzed asymmetric allylic alkylation followed by intramolecular Friedel-Crafts reaction, an array of azepino[3,4,5-cd]-indoles were obtained in good yields with excellent diastereo-/enantioselective control. More importantly, the full stereodivergence of this transformation was established via synergistic catalysis followed by acid-promoted epimerization, and up to eight stereoisomers of the cycloadducts bearing three stereogenic centers could be predictably achieved from the same set of starting materials for the first time. Quantum mechanical computations established a plausible mechanism for the synergistic Cu/Ir catalysis to stereodivergently introduce two vicinal stereocenters whose stereochemical information is remotely delivered across the fused azepine ring to control the third chiral center. Epimerization of the last center involves protonation-enabled reversal of the thermodynamically controlled relative configuration.

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