Dual-resolving of positional and geometric isomers of C=C bonds via bifunctional photocycloaddition-photoisomerization reaction system.
Guifang FengMing GaoLiwei WangJiayi ChenMenglu HouQiongqiong WanYun LinGuoyong XuXiaotian QiSuming ChenPublished in: Nature communications (2022)
The biological functions of lipids largely depend on their chemical structures. The position and configuration of C=C bonds are two of the essential attributes that determine the structures of unsaturated lipids. However, simultaneous identification of both attributes remains challenging. Here, we develop a bifunctional visible-light-activated photocycloaddition-photoisomerization reaction system, which enables the dual-resolving of the positional and geometric isomerism of C=C bonds in lipids when combines with liquid chromatography-mass spectrometry. The dual-pathway reaction mechanism is demonstrated by experiments and density functional theory calculations. Based on this bifunctional reaction system, a workflow of deep structural lipidomics is established, and allows the revealing of unique patterns of cis-trans-isomers in bacteria, as well as the tracking of C=C positional isomers changes in mouse brain ischemia. This study not only offers a powerful tool for deep lipid structural biology, but also provides a paradigm for developing the multifunctional visible-light-induced reaction.
Keyphrases
- density functional theory
- mass spectrometry
- liquid chromatography
- molecular dynamics
- high resolution
- fatty acid
- electron transfer
- high resolution mass spectrometry
- tandem mass spectrometry
- high performance liquid chromatography
- drug delivery
- gas chromatography
- molecular dynamics simulations
- capillary electrophoresis
- transition metal
- simultaneous determination
- solid phase extraction
- electronic health record