4.7 Article

Imaging of Endogenous Metabolites of Plant Leaves by Mass Spectrometry Based on Laser Activated Electron Tunneling

Journal

SCIENTIFIC REPORTS
Volume 6, Issue -, Pages -

Publisher

NATURE PUBLISHING GROUP
DOI: 10.1038/srep24164

Keywords

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Funding

  1. National Natural Science Foundation of China (NSFC) [21175054, 31270876, 31370815, 21575046]
  2. Ministry of Science and Technology of the People's Republic of China (MSTC) [2014DFB30020]
  3. Program for Changjiang Scholars and Innovative Research Team in University (PCSIRT) [IRT0953]
  4. Hubei Natural Science Foundation Council (HBNSFC) [2009CDA001]
  5. Research Funds of Central China Normal University from the Ministry of Education [120002040270, CCNU11G01007, CCNU11C01002]
  6. Research Platform of Hubei Province for Monitoring of Pesticide Residues and Agricultural Products Safety

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A new mass spectrometric imaging approach based on laser activated electron tunneling (LAET) was described and applied to analysis of endogenous metabolites of plant leaves. LAET is an electron-directed soft ionization technique. Compressed thin films of semiconductor nanoparticles of bismuth cobalt zinc oxide were placed on the sample plate for proof-of-principle demonstration because they can not only absorb ultraviolet laser but also have high electron mobility. Upon laser irradiation, electrons are excited from valence bands to conduction bands. With appropriate kinetic energies, photoexcited electrons can tunnel away from the barrier and eventually be captured by charge deficient atoms present in neutral molecules. Resultant unpaired electron subsequently initiates specific chemical bond cleavage and generates ions that can be detected in negative ion mode of the mass spectrometer. LAET avoids the co-crystallization process of routinely used organic matrix materials with analyzes in MALDI (matrix assisted-laser desorption ionization) analysis. Thus uneven distribution of crystals with different sizes and shapes as well as background peaks in the low mass range resulting from matrix molecules is eliminated. Advantages of LAET imaging technique include not only improved spatial resolution but also photoelectron capture dissociation which produces predictable fragment ions.

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