Chromatographic Phospholipid Trapping for Automated H/D Exchange Mass Spectrometry of Membrane Protein-Lipid Assemblies.
Dietmar HammerschmidValeria CalvaresiChloe BaileyBenjamin Russell LewisArgyris PolitisMichael MorrisLaetitia DenbighMalcolm AndersonEamonn ReadingPublished in: Analytical chemistry (2023)
Lipid interactions modulate the function, folding, structure, and organization of membrane proteins. Hydrogen/deuterium exchange mass spectrometry (HDX-MS) has emerged as a useful tool to understand the structural dynamics of these proteins within lipid environments. Lipids, however, have proven problematic for HDX-MS analysis of membrane-embedded proteins due to their presence of impairing proteolytic digestion, causing liquid chromatography column fouling, ion suppression, and/or mass spectral overlap. Herein, we describe the integration of a chromatographic phospholipid trap column into the HDX-MS apparatus to enable online sample delipidation prior to protease digestion of deuterium-labeled protein-lipid assemblies. We demonstrate the utility of this method on membrane scaffold protein-lipid nanodisc─both empty and loaded with the ∼115 kDa transmembrane protein AcrB─proving efficient and automated phospholipid capture with minimal D-to-H back-exchange, peptide carry-over, and protein loss. Our results provide insights into the efficiency of phospholipid capture by ZrO 2 -coated and TiO 2 beads and describe how solution conditions can be optimized to maximize not only the performance of our online but also the existing offline, delipidation workflows for HDX-MS. We envision that this HDX-MS method will significantly ease membrane protein analysis, allowing to better interrogate their dynamics in artificial lipid bilayers or even native cell membranes.
Keyphrases
- mass spectrometry
- liquid chromatography
- fatty acid
- high resolution mass spectrometry
- simultaneous determination
- gas chromatography
- tandem mass spectrometry
- high performance liquid chromatography
- multiple sclerosis
- ms ms
- capillary electrophoresis
- high resolution
- protein protein
- deep learning
- mesenchymal stem cells
- high throughput
- molecular dynamics simulations
- binding protein
- single cell
- stem cells
- social media
- single molecule
- cancer therapy
- small molecule