pH-Dependent Deformations of the Energy Landscape of Avidin-like Proteins Investigated by Single Molecule Force Spectroscopy

Avidin and avidin-like proteins are widely used in numerous techniques since the avidin-biotin interaction is known to be very robust and reliable. Within this study, we investigated this bond at the molecular level under harsh conditions ranging from very low to very high pH values. We compared avi...

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Main Authors: Melanie Köhler, Andreas Karner, Michael Leitner, Vesa P. Hytönen, Markku Kulomaa, Peter Hinterdorfer, Andreas Ebner
Format: Article
Language:English
Published: MDPI AG 2014-08-01
Series:Molecules
Subjects:
Online Access:http://www.mdpi.com/1420-3049/19/8/12531
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spelling doaj-92898bc539004ffab95df3f8f00fa74b2020-11-24T22:02:38ZengMDPI AGMolecules1420-30492014-08-01198125311254610.3390/molecules190812531molecules190812531pH-Dependent Deformations of the Energy Landscape of Avidin-like Proteins Investigated by Single Molecule Force SpectroscopyMelanie Köhler0Andreas Karner1Michael Leitner2Vesa P. Hytönen3Markku Kulomaa4Peter Hinterdorfer5Andreas Ebner6Institute of Biophysics, Johannes Kepler University Linz, Gruberstrasse 40, 4020 Linz, AustriaCenter for Advanced Bioanalysis, Gruberstrasse 40, 4020 Linz, AustriaCenter for Advanced Bioanalysis, Gruberstrasse 40, 4020 Linz, AustriaInstitute of Biomedical Technology, University of Tampere, FI-33014 Tampere, FinlandInstitute of Biomedical Technology, University of Tampere, FI-33014 Tampere, FinlandInstitute of Biophysics, Johannes Kepler University Linz, Gruberstrasse 40, 4020 Linz, AustriaInstitute of Biophysics, Johannes Kepler University Linz, Gruberstrasse 40, 4020 Linz, AustriaAvidin and avidin-like proteins are widely used in numerous techniques since the avidin-biotin interaction is known to be very robust and reliable. Within this study, we investigated this bond at the molecular level under harsh conditions ranging from very low to very high pH values. We compared avidin with streptavidin and a recently developed avidin-based mutant, chimeric avidin. To gain insights of the energy landscape of these interactions we used a single molecule approach and performed the Single Molecule Force Spectroscopy atomic force microscopy technique. There, the ligand (biotin) is covalently coupled to a sharp AFM tip via a distensible hetero-bi-functional crosslinker, whereas the receptor of interest is immobilized on the probe surface. Receptor-ligand complexes are formed and ruptured by repeatedly approaching and withdrawing the tip from the surface. Varying both pulling velocity and pH value, we could determine changes of the energy landscape of the complexes. Our results clearly demonstrate that avidin, streptavidin and chimeric avidin are stable over a wide pH range although we could identify differences at the outer pH range. Taking this into account, they can be used in a broad range of applications, like surface sensors at extreme pH values.http://www.mdpi.com/1420-3049/19/8/12531avidin mutantavidin-biotinforce spectroscopymolecular recognitionpH dependencesingle moleculesbiophysics
collection DOAJ
language English
format Article
sources DOAJ
author Melanie Köhler
Andreas Karner
Michael Leitner
Vesa P. Hytönen
Markku Kulomaa
Peter Hinterdorfer
Andreas Ebner
spellingShingle Melanie Köhler
Andreas Karner
Michael Leitner
Vesa P. Hytönen
Markku Kulomaa
Peter Hinterdorfer
Andreas Ebner
pH-Dependent Deformations of the Energy Landscape of Avidin-like Proteins Investigated by Single Molecule Force Spectroscopy
Molecules
avidin mutant
avidin-biotin
force spectroscopy
molecular recognition
pH dependence
single molecules
biophysics
author_facet Melanie Köhler
Andreas Karner
Michael Leitner
Vesa P. Hytönen
Markku Kulomaa
Peter Hinterdorfer
Andreas Ebner
author_sort Melanie Köhler
title pH-Dependent Deformations of the Energy Landscape of Avidin-like Proteins Investigated by Single Molecule Force Spectroscopy
title_short pH-Dependent Deformations of the Energy Landscape of Avidin-like Proteins Investigated by Single Molecule Force Spectroscopy
title_full pH-Dependent Deformations of the Energy Landscape of Avidin-like Proteins Investigated by Single Molecule Force Spectroscopy
title_fullStr pH-Dependent Deformations of the Energy Landscape of Avidin-like Proteins Investigated by Single Molecule Force Spectroscopy
title_full_unstemmed pH-Dependent Deformations of the Energy Landscape of Avidin-like Proteins Investigated by Single Molecule Force Spectroscopy
title_sort ph-dependent deformations of the energy landscape of avidin-like proteins investigated by single molecule force spectroscopy
publisher MDPI AG
series Molecules
issn 1420-3049
publishDate 2014-08-01
description Avidin and avidin-like proteins are widely used in numerous techniques since the avidin-biotin interaction is known to be very robust and reliable. Within this study, we investigated this bond at the molecular level under harsh conditions ranging from very low to very high pH values. We compared avidin with streptavidin and a recently developed avidin-based mutant, chimeric avidin. To gain insights of the energy landscape of these interactions we used a single molecule approach and performed the Single Molecule Force Spectroscopy atomic force microscopy technique. There, the ligand (biotin) is covalently coupled to a sharp AFM tip via a distensible hetero-bi-functional crosslinker, whereas the receptor of interest is immobilized on the probe surface. Receptor-ligand complexes are formed and ruptured by repeatedly approaching and withdrawing the tip from the surface. Varying both pulling velocity and pH value, we could determine changes of the energy landscape of the complexes. Our results clearly demonstrate that avidin, streptavidin and chimeric avidin are stable over a wide pH range although we could identify differences at the outer pH range. Taking this into account, they can be used in a broad range of applications, like surface sensors at extreme pH values.
topic avidin mutant
avidin-biotin
force spectroscopy
molecular recognition
pH dependence
single molecules
biophysics
url http://www.mdpi.com/1420-3049/19/8/12531
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