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March 5, 2026Nature Communications0 citationsOpen Access

Chemodivergent Coupling of 1,3-Enynes with Anilines to Access Dihydropyrrole Skeleton under Palladium Catalysis

SXShuai XuXLXueting LiZWZhi-Hui Wang

Key Points

  • The research aims to provide an efficient method for synthesizing functionalized 2,5-dihydropyrroles using chemodivergent strategies.
  • Palladium-catalyzed reactions
  • Utilization of readily accessible 1,3-enynes and anilines
  • Modulation of selectivity-determining steps for two-component or three-component reactions
  • Mechanistic studies involving hydroamination and intramolecular annulation
  • Functionalized 2,5-dihydropyrrole scaffolds synthesized in excellent yields
  • High selectivity achieved by varying reaction conditions
  • Reactions accelerated using Pd(II) catalysts
  • Selectivity can be diverted towards telomerization with different catalysts and conditions

Abstract

2,5-Dihydropyrroles are prevalent structural motifs in various natural products and biologically active molecules. Conventional methods for constructing these heterocycles often rely on elaborate multi-step procedures or complex starting materials. Herein, we describe a palladium-catalyzed chemodivergent protocol for synthesizing functionalized 2,5-dihydropyrrole scaffolds from readily accessible 1,3-enynes and anilines. By modulating the relative rates of the selectivity-determining steps, either two-component annulation or three-component telomerization can be selectively achieved, affording two distinct types of functionalized 2,5-dihydropyrroles in excellent yields and with high selectivities. Mechanistic studies reveal that the reaction initially proceeds through 1,4-hydroamination of 1,3-enynes to generate an aminomethyl allene intermediate, followed by an intramolecular annulation affording 2-substituted 2,5-dihydropyrroles. This process is significantly accelerated in the presence of Pd(II) catalysts. However, employing Pd(0) precursors, strong acids, and excess ligand effectively decelerates this pathway, diverting the selectivity towards reaction with a second equivalent of 1,3-enyne to yield the telomeric products. This study not only provides an atom-economical method for constructing the 2,5-dihydropyrrole core but also offers a valuable strategy for the development of telomerization chemistry. Conventional methods for constructing 2,5-dihydropyrroles often rely on elaborate multi-step procedures or complex starting materials. Herein, the authors describe a palladium-catalyzed chemodivergent protocol for synthesizing functionalized 2,5-dihydropyrrole scaffolds from readily accessible 1,3-enynes and anilines.

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Cite This Study

Xu et al. (2026) studied this question.

synapsesocial.com/papers/69a91d8dd6127c7a504c06abhttps://doi.org/10.1038/s41467-026-70201-z
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