Publication | Open Access
Mechanical Mapping of Single Membrane Proteins at Submolecular Resolution
134
Citations
25
References
2011
Year
Proteinlipid InteractionProtein AssemblyMolecular BiologyAnalytical UltracentrifugationIndentation Force SpectroscopyMechanical MappingMembrane ProteinsSingle Molecule BiophysicsProtein FoldingMacromolecular AssembliesBiophysicsConformational StudyProtein ModelingSolution Nmr SpectroscopyBiomolecular ScienceStructural BiologyBiomolecular EngineeringMembrane BiophysicsProtein FlexibilityNatural SciencesExperimental BiophysicsMolecular BiophysicsMedicine
The capacity of proteins to carry out different functions is related to their ability to undergo conformation changes, which depends on the flexibility of protein structures. In this work, we applied a novel imaging mode based on indentation force spectroscopy to map quantitatively the flexibility of individual membrane proteins in their native, folded state at unprecedented submolecular resolution. Our results enabled us to correlate protein flexibility with crystal structure and showed that α-helices are stiff structures that may contribute importantly to the mechanical stability of membrane proteins, while interhelical loops appeared more flexible, allowing conformational changes related to function.
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