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Transmission-mode MALDI-2 mass spectrometry imaging of cells and tissues at subcellular resolution
by
Dreisewerd, K
, Niehaus, M
, Soltwisch, J
, Belov, M E
in
Brain slice preparation
/ Cerebellum
/ Chemical composition
/ Glycolipids
/ Ion sources
/ Ionization
/ Ions
/ Kidneys
/ Mass spectrometry
/ Mass spectroscopy
/ Medical imaging
/ Neuroimaging
/ Organic chemistry
/ Pixels
/ Scientific imaging
/ Sensitivity analysis
/ Spectroscopy
2019
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Transmission-mode MALDI-2 mass spectrometry imaging of cells and tissues at subcellular resolution
by
Dreisewerd, K
, Niehaus, M
, Soltwisch, J
, Belov, M E
in
Brain slice preparation
/ Cerebellum
/ Chemical composition
/ Glycolipids
/ Ion sources
/ Ionization
/ Ions
/ Kidneys
/ Mass spectrometry
/ Mass spectroscopy
/ Medical imaging
/ Neuroimaging
/ Organic chemistry
/ Pixels
/ Scientific imaging
/ Sensitivity analysis
/ Spectroscopy
2019
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While trying to remove the title from your shelf something went wrong :( Kindly try again later!
Do you wish to request the book?
Transmission-mode MALDI-2 mass spectrometry imaging of cells and tissues at subcellular resolution
by
Dreisewerd, K
, Niehaus, M
, Soltwisch, J
, Belov, M E
in
Brain slice preparation
/ Cerebellum
/ Chemical composition
/ Glycolipids
/ Ion sources
/ Ionization
/ Ions
/ Kidneys
/ Mass spectrometry
/ Mass spectroscopy
/ Medical imaging
/ Neuroimaging
/ Organic chemistry
/ Pixels
/ Scientific imaging
/ Sensitivity analysis
/ Spectroscopy
2019
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Transmission-mode MALDI-2 mass spectrometry imaging of cells and tissues at subcellular resolution
Journal Article
Transmission-mode MALDI-2 mass spectrometry imaging of cells and tissues at subcellular resolution
2019
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Overview
Matrix-assisted laser desorption–ionization mass spectrometry imaging in transmission-mode geometry (t-MALDI–MSI) can provide molecular information with a pixel size of 1 µm and smaller, which makes this label-free method highly interesting for characterizing the chemical composition of tissues and cells on a (sub)cellular level. However, a major hindrance for wider use of the technology is the reduced ion abundance at small pixel sizes. Here we mitigate this problem by use of laser-induced post-ionization (MALDI-2) and by adapting a t-MALDI-2 ion source to an Orbitrap mass analyzer. We demonstrate the crucial sensitivity and accuracy boosts that are achieved with this combination by visualizing the distribution of numerous phospho- and glycolipids in mouse cerebellum and kidney slices, and in cultured Vero B4 cells. With brain tissue, a pixel size of 600 nm was achieved. Our method could constitute a valuable new tool for research in cell biology and biomedicine.
Publisher
Nature Publishing Group
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