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March 21, 2026Journal of the American Chemical Society3 citations

Catalytic Asymmetric cis -Dihydroxylation of Quinones Enabled by a Functional Mimic of Rieske Dioxygenases

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SZShixin ZhengHZHuajie ZhaoJCJ. C. Chen

Key Points

  • The aim is to develop an efficient method for the catalytic asymmetric cis-dihydroxylation of 1,4-quinones using earth-abundant metal catalysts.
  • Utilized a nonheme manganese complex with a chiral ligand for reaction.
  • Explored the use of hydrogen peroxide and alkyl hydroperoxides as oxidants.
  • Conducted mechanistic studies with experimental and computational approaches.
  • Achieved high yields of cis-1,2-diols with up to 99% enantiomeric excess (ee).
  • Demonstrated complete diastereoselectivity in the reaction.
  • Identified a manganese(V)-oxo-hydroxo species as the active intermediate.

Abstract

The development of efficient and practical catalytic asymmetric cis-dihydroxylation reactions using earth-abundant metal catalysts remains a major challenge; the cis-dihydroxylation of 1,4-quinones represents a vital gateway to enantioenriched cis-1,2-diols, which are privileged scaffolds for bioactive natural products and pharmaceuticals. Inspired by the asymmetric cis-dihydroxylation of aromatic and olefinic C═C bonds catalyzed by Rieske dioxygenases, we present a biomimetic strategy for the asymmetric cis-dihydroxylation of 1,4-quinones. Herein, we report an inexpensive and readily accessible nonheme manganese complex, supported by a tetradentate aminopyridine ligand featuring a rigid chiral diamine backbone and a sterically bulky triisopropylsilyl group, for the cis-dihydroxylation of 1,4-quinones by hydrogen peroxide and alkyl hydroperoxides; it is noted that this study reports the first example of using alkyl hydroperoxides as a terminal oxidant in cis-dihydroxylation reactions. Various 1,4-quinones were efficiently oxidized to cis-1,2-diols in synthetically useful yields with excellent chemo-, regio-, and enantioselectivity (up to 99% ee), along with complete diastereoselectivity. Mechanistic evidence from experimental and computational studies supports a highly electrophilic manganese(V)-oxo-hydroxo species as the active cis-dihydroxylating intermediate, although the formation mechanism of the high-valent manganese-oxo intermediate is different depending on the hydroperoxide oxidants. Moreover, a two-step mechanism is proposed for the manganese(V)-oxo-hydroxo-mediated asymmetric cis-dihydroxylation, such as the Re-face selective oxo attack on the less hindered C═C bond, followed by OH-rebound, with stereochemistry dictated by the initial oxo attack. Thus, this study delineates the first biomimetic oxidation strategy enabling asymmetric cis-dihydroxylation of 1,4-quinones mediated by a high-valent manganese-oxo species generated in the reactions of hydrogen peroxide and alkyl hydroperoxides.

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Cite This Study

Zheng et al. (2026) studied this question.

synapsesocial.com/papers/69be368a6e48c4981c675948https://doi.org/10.1021/jacs.5c20048
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