Catalytic asymmetric synthesis of spirocyclobutyl oxindoles and beyond via [2+2] cycloaddition and sequential transformations.
Xia ZhongJiuqi TanJianglin QiaoYuqiao ZhouCidan LvZhishan SuShunxi DongXiaoming FengPublished in: Chemical science (2021)
Efficient asymmetric synthesis of a collection of small molecules with structural diversity is highly important to drug discovery. Herein, three distinct types of chiral cyclic compounds were accessible by enantioselective catalysis and sequential transformations. Highly regio- and enantioselective [2+2] cycloaddition of (E)-alkenyloxindoles with the internal C[double bond, length as m-dash]C bond of N-allenamides was achieved with N,N'-dioxide/Ni(OTf)2 as the catalyst. Various optically active spirocyclobutyl oxindole derivatives were obtained under mild conditions. Moreover, formal [4+2] cycloaddition products occurring at the terminal C[double bond, length as m-dash]C bond of N-allenamides, dihydropyran-fused indoles, were afforded by a stereospecific sequential transformation with the assistance of a catalytic amount of Cu(OTf)2. In contrast, performing the conversion under air led to the formation of γ-lactones via the water-involved deprotection and rearrangement process. Experimental studies and DFT calculations were performed to probe the reaction mechanism.
Keyphrases
- drug discovery
- transition metal
- density functional theory
- molecular dynamics
- magnetic resonance
- metal organic framework
- ionic liquid
- crystal structure
- electron transfer
- room temperature
- living cells
- molecular docking
- magnetic resonance imaging
- highly efficient
- case control
- solid state
- mass spectrometry
- single molecule