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September 19, 2025Journal of the American Chemical Society25 citations

Asymmetric Dearomative 2 + 2 Photocycloaddition of Quinoline and Indole Derivatives with Bicyclo1.1.0butanes

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JYJian YangLYLongqing YangYZYang Zhao

Key Points

  • The study achieved high regio- and enantioselectivity in the dearomative photocycloaddition process.
  • Results showed up to 99% yield and >19:1 regioselectivity and diastereoselectivity from 52 examples.
  • Using a chiral Lewis acid, the researchers tackled regioselectivity challenges by designing tailored catalysts.
  • A detailed catalytic cycle and transition states were explored based on experimental studies and theoretical calculations.

Abstract

The dearomative photocycloaddition reactions of (hetero)arene feedstocks have emerged as an efficient platform for the construction of three-dimensional complexity, which is of increasing interest in medicinal chemistry. Nevertheless, the catalytic asymmetric version of such transformations with quinolines remains a challenging task because of regio-, diastereo-, and enantioselective control. Especially the presence of substituents with divergent electronic effects on the aromatic ring presents a regioselectivity control dilemma. Herein, we report highly regio-, diastereo-, and enantioselective dearomative 2 + 2 photocycloadditions of quinolines with bicyclo1.1.0butanes (BCBs) by utilizing a chiral Lewis acid-mediated strain-release approach. The regioselectivity and stereocontrol challenges were addressed by strategically designing catalysts with tailored steric bulk that modulated the chiral pocket in response to the electronic and steric characteristics of diverse substrate substituents. This strategy was compatible with isoquinoline, indole derivatives, naphthalene, and benzobthiophene, providing highly decorated chiral heterocycle-fused bicyclo2.1.1hexanes (BCHs) in moderate to good yields with high regio-, diastereo-, and enantioselectivities (52 examples, up to 99% yield, >19:1 rr, >19:1 dr, 99% ee). Based on experimental studies and theoretical calculations, a catalytic cycle along with possible transition states was provided to understand the reaction mechanism.

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Cite This Study

Yang et al. (2025) studied this question.

synapsesocial.com/papers/68d464f831b076d99fa645d6https://doi.org/10.1021/jacs.5c12057
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Gd(III)-Catalyzed Regio-, Diastereo-, and Enantioselective [4 + 2] Photocycloaddition of Naphthalene Derivatives2024 · 47 citations
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  3. 3Chiral Brønsted Acid-Catalyzed Intramolecular Asymmetric Dearomatization Reaction of Indoles with Cyclobutanones via Cascade Friedel–Crafts/Semipinacol Rearrangement2024 · 41 citations
  4. 4Photochemical Stereocontrol Using Tandem Photoredox–Chiral Lewis Acid Catalysis2016 · 380 citations
  5. 5Catalytic Asymmetric Strategies for Bicyclo[1.1.0]butane Transformations: Advances and Applications2025 · 89 citations