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3,4-Dihydroxypyrrolidines via modified tandem aza-Payne/hydroamination pathway
Aman Kulshrestha1, Nastaran Salehi Marzijarani, Kumar Dilip Ashtekar
1Department of Chemistry, Michigan State University , East Lansing, Michigan 48824, United States.
Abstract:
The outcome of a tandem aza-Payne/hydroamination reaction is modified via the use of a latent nucleophile. The latter initially serves as an electrophile to intercept the aziridine alkoxide and afterward turns into a nucleophile thereby performing the aziridine ring opening, out competing the intramolecular aza-Payne pathway. Subsequent hydroamination in the same pot provides N-Ts enamide carbonates, which can be easily converted into biologically significant 3,4-dihydroxylactams.
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