4.7 Review

Advanced tandem mass spectrometry in metabolomics and lipidomics-methods and applications

期刊

ANALYTICAL AND BIOANALYTICAL CHEMISTRY
卷 413, 期 24, 页码 5927-5948

出版社

SPRINGER HEIDELBERG
DOI: 10.1007/s00216-021-03425-1

关键词

Tandem mass spectrometry; Lipidomics; Metabolomics; Mass spectrometry imaging; HPLC; Biopolymers/lipids

资金

  1. Fonds der Chemischen Industrie
  2. Deutsche Forschungsgemeinschaft [HE 8521/1-1]
  3. Projekt DEAL

向作者/读者索取更多资源

Metabolomics and lipidomics are driving forces in the omics era, with tandem mass spectrometry methods playing a crucial role in characterizing the structural details of metabolites and lipids. Recent advancements in alternative tandem MS methodologies aim to provide full structural characterization of these compounds. The review critically examines the principles, capabilities, drawbacks, and initial applications of these advanced tandem mass spectrometry strategies in the fields of metabolomics and lipidomics.
Metabolomics and lipidomics are new drivers of the omics era as molecular signatures and selected analytes allow phenotypic characterization and serve as biomarkers, respectively. The growing capabilities of untargeted and targeted workflows, which primarily rely on mass spectrometric platforms, enable extensive charting or identification of bioactive metabolites and lipids. Structural annotation of these compounds is key in order to link specific molecular entities to defined biochemical functions or phenotypes. Tandem mass spectrometry (MS), first and foremost collision-induced dissociation (CID), is the method of choice to unveil structural details of metabolites and lipids. But CID fragment ions are often not sufficient to fully characterize analytes. Therefore, recent years have seen a surge in alternative tandem MS methodologies that aim to offer full structural characterization of metabolites and lipids. In this article, principles, capabilities, drawbacks, and first applications of these advanced tandem mass spectrometry strategies will be critically reviewed. This includes tandem MS methods that are based on electrons, photons, and ion/molecule, as well as ion/ion reactions, combining tandem MS with concepts from optical spectroscopy and making use of derivatization strategies. In the final sections of this review, the first applications of these methodologies in combination with liquid chromatography or mass spectrometry imaging are highlighted and future perspectives for research in metabolomics and lipidomics are discussed.

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