The base-induced rearrangement of aziridines has been examined using a combination of calculations and experiment. The calculations show that the substituent on nitrogen is a critical feature that greatly affects the favorability of both α-deprotonation, and β-elimination to form an allylic amine. Experiments were carried out to determine whether E2-like rearrangement to the allylic amine with lithium diisopropyl amide (LDA) is possible. N-tosyl aziridines were found to deprotonate on the tosyl group, preventing further reaction. A variety of N-benzenesulfonyl aziridines having both α- and β-protons decomposed when treated with LDA in either tetrahydrofuran or hexamethylphosphoramide. However, when α-protons were not present, allylic amine was formed, presumably via β-elimination. Copyright © 2011 John Wiley & Sons, Ltd.
Hydrolysis and carbonyl hydration of adamantane-based twisted amide 1 were studied computationally. The importance of the bridgehead methyl substituents on these reactions was determined. The carbonyl hydration of 1 is structurally and energetically much like the hydration of a transition state to amide CN bond rotation. However, hydrolysis of 1 to the amino acid is dependent on the bridgehead methyl substituents and less like hydrolysis of an amide transition state. Copyright © 2004 John Wiley & Sons, Ltd.