The “cesium effect” magnified: exceptional chemoselectivity in cesium ion mediated nucleophilic reactions

«Цезиевый эффект» в усиленном виде: исключительная хемоселективность в нуклеофильных реакциях, опосредованных ионами цезия
Michael P. Doyle, Oleg V. Larionov, Luca De Angelis, Hadi D. Arman, Soumen Biswas, William B. Hughes, Graham C. Haug, Ramon Trevino, Seth O. Fremin
2024-01-01

1,2,3-triazine 1-oxidescesium carbonatecesium effectcesium vs sodium coordinationmetal-specific transition stateoxadiaza excision cross-couplingpyridinespyridonespyridylpyridonesβ-ketoesters
Chemodivergent construction of structurally distinct heterocycles from the same precursors by adjusting specific reaction parameters is an emergent area of organic synthesis; yet, understanding of the processes that underpin the reaction divergence is lacking, preventing the development of new synthetic methods by systematically harnessing key mechanistic effects. We describe herein cesium carbonate-promoted oxadiaza excision cross-coupling reactions of β-ketoesters with 1,2,3-triazine 1-oxides that form pyridones in good to high yields, instead of the sole formation of pyridines when the same reaction is performed in the presence of other alkali metal carbonates or organic bases. The reaction can be further extended to the construction of synthetically challenging pyridylpyridones. A computational study comparing the effect of cesium and sodium ions in the oxadiaza excision cross-coupling reactions reveals that the cesium-coordinated species changes the reaction preference from attack at the ketone carbonyl to attack at the ester carbon due to metal ion-specific transition state conformational accommodation, revealing a previously unexplored role of cesium ions that may facilitate the development of chemodivergent approaches to other heterocyclic systems.
1
Cesium carbonate-promoted oxadiaza excision cross-coupling of β-ketoesters with 1,2,3-triazine 1-oxides selectively yields pyridones in good to high yields.
2
Computational comparison shows cesium-coordinated species shift nucleophilic attack preference from the ketone carbonyl to the ester carbon versus sodium, due to metal-specific transition-state conformational accommodation.
3
The method can be extended to construct synthetically challenging pyridylpyridones.
4
The same reaction using other alkali metal carbonates or organic bases gives pyridines rather than pyridones, demonstrating exceptional cesium-dependent chemoselectivity.
5
The study reveals a previously unexplored role of cesium ions in directing reaction pathways, suggesting potential for systematic chemodivergent synthesis of other heterocycles.

Cesium carbonate-promoted oxadiaza excision cross-coupling reactions of β-ketoesters with 1,2,3-triazine 1-oxides (reaction system producing pyridones/pyridines)

Cesium ion–specific influence on chemoselectivity: metal-coordination–driven switch in nucleophilic attack site (from ketone carbonyl to ester carbon) and resulting formation of pyridones versus pyridines, including mechanistic origin via transition-state conformational accommodation

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2024-01-01
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Michael P. Doyle
Oleg V. Larionov
Luca De Angelis
Hadi D. Arman
Soumen Biswas
William B. Hughes
Graham C. Haug
Ramon Trevino
Seth O. Fremin
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