Photoredox-catalyzed diastereoselective dearomative prenylation and reverse-prenylation of electron-deficient indole derivatives

Prenylated and reverse-prenylated indolines are privileged scaffolds in numerous naturally occurring indole alkaloids with a broad spectrum of important biological properties. Development of straightforward and stereoselective methods to enable the synthesis of structurally diverse prenylated and re...

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Veröffentlicht in:Nature communications 2023-06, Vol.14 (1), p.3876-3876, Article 3876
Hauptverfasser: Chang, Xuexue, Zhang, Fangqing, Zhu, Shibo, Yang, Zhuang, Feng, Xiaoming, Liu, Yangbin
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Sprache:eng
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Zusammenfassung:Prenylated and reverse-prenylated indolines are privileged scaffolds in numerous naturally occurring indole alkaloids with a broad spectrum of important biological properties. Development of straightforward and stereoselective methods to enable the synthesis of structurally diverse prenylated and reverse-prenylated indoline derivatives is highly desirable and challenging. In this context, the most direct approaches to achieve this goal generally rely on transition-metal-catalyzed dearomative allylic alkylation of electron-rich indoles. However, the electron-deficient indoles are much less explored, probably due to their diminished nucleophilicity. Herein, a photoredox-catalyzed tandem Giese radical addition/Ireland–Claisen rearrangement is disclosed. Diastereoselective dearomative prenylation and reverse-prenylation of electron-deficient indoles proceed smoothly under mild conditions. An array of tertiary α-silylamines as radical precursors is readily incorporated in 2,3-disubstituted indolines with high functional compatibility and excellent diastereoselectivity (>20:1 d.r.). The corresponding transformations of the secondary α-silylamines provide the biologically important lactam-fused indolines in one-pot synthesis. Subsequently, a plausible photoredox pathway is proposed based on control experiments. The preliminary bioactivity study reveals a potential anticancer property of these structurally appealing indolines. Prenylated and reverse-prenylated indoline alkaloids are widely present in nature. Here, the authors demonstrate a tandem photoredox radical dearomatization/Claisen rearrangement of electron-deficient indoles for the rapid assembly of these privileged scaffolds.
ISSN:2041-1723
2041-1723
DOI:10.1038/s41467-023-39633-9