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One‐Pot Synthesis of (−)‐Oseltamivir and Mechanistic Insights into the Organocatalyzed Michael Reaction
Authors:Takasuke Mukaiyama  Dr Hayato Ishikawa  Dr Hiroyuki Koshino  Prof Dr Yujiro Hayashi
Institution:1. Department of Chemistry, Graduate School of Science, Tohoku University, 6‐3 Aramaki‐Aza Aoba, Aoba‐ku, Sendai 980‐8578 (Japan), Fax: (+81)?22‐795‐6566;2. Previous address (before 30thJune 2012), Department of Industrial Chemistry, Faculty of Engineering, Tokyo University of Science, Kagurazaka, Shinjuku‐ku, Tokyo 162‐8601 (Japan);3. Department of Chemistry, Graduate School of Science and Technology, Kumamoto University, 2‐39‐1, Kurokami, Chuo‐ku, Kumamoto, 860‐8555 (Japan);4. Global Research Cluster, RIKEN, 2‐1 Hirosawa, Wako, Saitama, 351‐0198 (Japan)
Abstract:The one‐pot sequential synthesis of (?)‐oseltamivir has been achieved without evaporation or solvent exchange in 36 % yield over seven reactions. The key step was the asymmetric Michael reaction of pentan‐3‐yloxyacetaldehyde with (Z)‐N‐2‐nitroethenylacetamide, catalyzed by a diphenylprolinol silyl ether. The use of a bulky O‐silyl‐substituted diphenylprolinol catalyst, chlorobenzene as a solvent, and HCO2H as an acid additive, were key to produce the first Michael adduct in both excellent yield and excellent diastereo‐ and enantioselectivity. Investigation into the effect of acid demonstrated that an acid additive accelerates not only the EZ isomerization of the enamines derived from pentan‐3‐yloxyacetaldehyde with diphenylprolinol silyl ether, but also ring opening of the cyclobutane intermediate and the addition reaction of the enamine to (Z)‐N‐2‐nitroethenylacetamide. The transition‐state model for the Michael reaction of pentan‐3‐yloxyacetaldehyde with (Z)‐N‐2‐nitroethenylacetamide was proposed by consideration of the absolute configuration of the major and minor isomers of the Michael product with the results of the Michael reaction of pentan‐3‐yloxyacetaldehyde with phenylmaleimide and naphthoquinone.
Keywords:asymmetric synthesis  Michael addition  one‐pot reaction  organocatalysis  Tamiflu
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