Abstract
This work is part of a long-term project aiming to develop new and original ring contraction reactions to access organised molecular edifices with potential biological activities. Ring contraction reactions are usually discovered in a fortuitous manner and present the advantage of rapid and efficient modifications of the molecular skeletons, allowing thus an easy access to structural analogues, a useful and interesting property both in terms of synthetic and medicinal chemistry. With this aim in mind, three different ring contraction reactions, as well as their uses, are reported in this manuscript. The first one describes the particular reactivity of bis-Boc 2,5-diketopiperazines (DKPs) in a basic medium and their conversion into hydantoins, two heterocyclic skeletons with pharmacological interest. This new rearrangement has been applied to several DKPs with acceptable yields and good enantio- or -diasteroiso-meric excesses. The interest of bis-Boc DKPs as starting platforms for the construction of complex structures has later been demonstrated with the obtaining of spirolactams thanks to the use of the transannular rearrangement of activated lactams (TRAL) reaction followed by a fast and efficient ring-synthesis strategy. The studies by circular dichroism, NMR and molecular modelling performed after the dimerisation of those bicycles showed a similar behaviour to the one of polyproline II (PPII) helix, a secondary peptidic structure involved in protein-protein interactions and in pathogenic processes. A functionalization of our dimer then turned out to be necessary in order to validate the mimic potential of our dimers, which was done in part thanks to the discovery a new ring contraction reaction. In the presence of a triflate catalyst in various solvents under high temperatures this rearrangement allows a clean conversion of some fused bicycles into spirocycles with good yields. The interest of this work thus lies in the use of activated 2,5-diketopiperazines as starting materials and demonstrates the wide range of applications of ring contraction reactions.