Tuning membrane protein mobility by confinement into nanodomains

被引:0
|
作者
Karner A. [1 ]
Nimmervoll B. [1 ]
Plochberger B. [2 ]
Klotzsch E. [3 ]
Horner A. [4 ]
Knyazev D.G. [4 ]
Kuttner R. [4 ]
Winkler K. [4 ]
Winter L. [4 ]
Siligan C. [4 ]
Ollinger N. [4 ]
Pohl P. [4 ]
Preiner J. [1 ]
机构
[1] Center for Advanced Bioanalysis GmbH, Gruberstrasse 40-42, Linz
[2] Upper Austria University of Applied Sciences, Campus Linz, Garnisonstrasse 21, Linz
[3] EMBL Australia Node in Single Molecule Science, ARC Centre of Excellence in Advanced Molecular Imaging, University of New South Wales, Sydney
[4] Institute of Biophysics, Johannes Kepler University Linz, Gruberstrasse 40, Linz
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D O I
10.1038/nnano.2016.236
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学科分类号
摘要
High-speed atomic force microscopy (HS-AFM) can be used to visualize function-related conformational changes of single soluble proteins. Similar studies of single membrane proteins are, however, hampered by a lack of suitable flat, non-interacting membrane supports and by high protein mobility. Here we show that streptavidin crystals grown on mica-supported lipid bilayers can be used as porous supports for membranes containing biotinylated lipids. Using SecYEG (protein translocation channel) and GlpF (aquaglyceroporin), we demonstrate that the platform can be used to tune the lateral mobility of transmembrane proteins to any value within the dynamic range accessible to HS-AFM imaging through glutaraldehyde-cross-linking of the streptavidin. This allows HS-AFM to study the conformation or docking of spatially confined proteins, which we illustrate by imaging GlpF at sub-molecular resolution and by observing the motor protein SecA binding to SecYEG. © 2017 Macmillan Publishers Limited, part of Springer Nature. All rights reserved.
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页码:260 / 266
页数:6
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