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June 29, 2026Journal of the American Chemical Society1 citations

Pyridyl Radical-Induced Catalytic Reconstruction of Cyclic Sulfides

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YLYi-Peng LiuSGShi-Yu GuoZDZhi-Yuan Ding

Key Points

  • The aim is to develop a catalytic method for expanding cyclic thioethers into complex semisaturated fused pyridines.
  • Utilized pyridyl radical-driven catalytic strategy for ring expansion.
  • Implemented dual photoredox cycles for radical transformations.
  • Conducted mechanistic studies supporting the stepwise radical process.
  • Achieved efficient synthesis of semisaturated fused pyridines.
  • Demonstrated broad functional-group tolerance and substrate generality.
  • Enabled gram-scale synthesis and late-stage modifications of pharmaceutical compounds.

Abstract

Ring-expansion editing offers a transformative strategy that could reshape the landscape of ring scaffold construction in synthetic chemistry. The introduction of three-dimensionality ring into flat aromatic systems could afford important semisaturated fused heterocycles, yet efficient method to access sulfur-containing semisaturated fused pyridines (SSFPs) remains scarce. Herein, we report a pyridyl radical-driven catalytic strategy for the direct two-carbon ring expansion of readily available cyclic thioethers, providing efficient access to synthetically challenging SSFPs. This transformation is enabled by synergistic dual photoredox cycles that orchestrate a cascade of radical cross-coupling, C(sp 3 )–S bond cleavage, and intramolecular cyclization between commercial bromopyridines and cyclic sulfides. The protocol demonstrates broad functional-group tolerance and substrate generality. Gram-scale synthesis and extensive downstream derivatizations, including late-stage semisaturation of pharmaceutical cores, highlight its synthetic utility. Mechanistic studies support a stepwise radical process involving discrete pyridyl and carbon-centered radical intermediates. This method offers a step-economical and modular alternative to conventional de novo synthesis for the rapid construction of complex, drug-like heterocyclic architectures.

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Cite This Study

Liu et al. (2026) studied this question.

synapsesocial.com/papers/6a420adff91bb43ea91921e5https://doi.org/10.1021/jacs.6c09452
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