In Vitro Characterization of the Two-Stage Non-Classical Reassembly Pathway of S-Layers
The recombinant bacterial surface layer (S-layer) protein rSbpA of Lysinibacillus sphaericus CCM 2177 is an ideal model system to study non-classical nucleation and growth of protein crystals at surfaces since the recrystallization process may be separated into two distinct steps: (i) adsorption of...
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doaj-15112b052b1c45f687cacec0bfffeb8c2020-11-24T21:44:54ZengMDPI AGInternational Journal of Molecular Sciences1422-00672017-02-0118240010.3390/ijms18020400ijms18020400In Vitro Characterization of the Two-Stage Non-Classical Reassembly Pathway of S-LayersAndreas Breitwieser0Jagoba Iturri1Jose-Luis Toca-Herrera2Uwe B. Sleytr3Dietmar Pum4Department of Nanobiotechnology, Institute for Biophysics, University of Natural Resources and Life Sciences Vienna, Muthgasse 11, Vienna 1190, AustriaDepartment of Nanobiotechnology, Institute for Biophysics, University of Natural Resources and Life Sciences Vienna, Muthgasse 11, Vienna 1190, AustriaDepartment of Nanobiotechnology, Institute for Biophysics, University of Natural Resources and Life Sciences Vienna, Muthgasse 11, Vienna 1190, AustriaDepartment of Nanobiotechnology, Institute for Biophysics, University of Natural Resources and Life Sciences Vienna, Muthgasse 11, Vienna 1190, AustriaDepartment of Nanobiotechnology, Institute for Biophysics, University of Natural Resources and Life Sciences Vienna, Muthgasse 11, Vienna 1190, AustriaThe recombinant bacterial surface layer (S-layer) protein rSbpA of Lysinibacillus sphaericus CCM 2177 is an ideal model system to study non-classical nucleation and growth of protein crystals at surfaces since the recrystallization process may be separated into two distinct steps: (i) adsorption of S-layer protein monomers on silicon surfaces is completed within 5 min and the amount of bound S-layer protein sufficient for the subsequent formation of a closed crystalline monolayer; (ii) the recrystallization process is triggered—after washing away the unbound S-layer protein—by the addition of a CaCl2 containing buffer solution, and completed after approximately 2 h. The entire self-assembly process including the formation of amorphous clusters, the subsequent transformation into crystalline monomolecular arrays, and finally crystal growth into extended lattices was investigated by quartz crystal microbalance with dissipation (QCM-D) and atomic force microscopy (AFM). Moreover, contact angle measurements showed that the surface properties of S-layers change from hydrophilic to hydrophobic as the crystallization proceeds. This two-step approach is new in basic and application driven S-layer research and, most likely, will have advantages for functionalizing surfaces (e.g., by spray-coating) with tailor-made biological sensing layers.http://www.mdpi.com/1422-0067/18/2/400S-layer proteinstwo-step crystallizationself-assembly kineticsnon-classical crystal growthCa2+ binding |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Andreas Breitwieser Jagoba Iturri Jose-Luis Toca-Herrera Uwe B. Sleytr Dietmar Pum |
spellingShingle |
Andreas Breitwieser Jagoba Iturri Jose-Luis Toca-Herrera Uwe B. Sleytr Dietmar Pum In Vitro Characterization of the Two-Stage Non-Classical Reassembly Pathway of S-Layers International Journal of Molecular Sciences S-layer proteins two-step crystallization self-assembly kinetics non-classical crystal growth Ca2+ binding |
author_facet |
Andreas Breitwieser Jagoba Iturri Jose-Luis Toca-Herrera Uwe B. Sleytr Dietmar Pum |
author_sort |
Andreas Breitwieser |
title |
In Vitro Characterization of the Two-Stage Non-Classical Reassembly Pathway of S-Layers |
title_short |
In Vitro Characterization of the Two-Stage Non-Classical Reassembly Pathway of S-Layers |
title_full |
In Vitro Characterization of the Two-Stage Non-Classical Reassembly Pathway of S-Layers |
title_fullStr |
In Vitro Characterization of the Two-Stage Non-Classical Reassembly Pathway of S-Layers |
title_full_unstemmed |
In Vitro Characterization of the Two-Stage Non-Classical Reassembly Pathway of S-Layers |
title_sort |
in vitro characterization of the two-stage non-classical reassembly pathway of s-layers |
publisher |
MDPI AG |
series |
International Journal of Molecular Sciences |
issn |
1422-0067 |
publishDate |
2017-02-01 |
description |
The recombinant bacterial surface layer (S-layer) protein rSbpA of Lysinibacillus sphaericus CCM 2177 is an ideal model system to study non-classical nucleation and growth of protein crystals at surfaces since the recrystallization process may be separated into two distinct steps: (i) adsorption of S-layer protein monomers on silicon surfaces is completed within 5 min and the amount of bound S-layer protein sufficient for the subsequent formation of a closed crystalline monolayer; (ii) the recrystallization process is triggered—after washing away the unbound S-layer protein—by the addition of a CaCl2 containing buffer solution, and completed after approximately 2 h. The entire self-assembly process including the formation of amorphous clusters, the subsequent transformation into crystalline monomolecular arrays, and finally crystal growth into extended lattices was investigated by quartz crystal microbalance with dissipation (QCM-D) and atomic force microscopy (AFM). Moreover, contact angle measurements showed that the surface properties of S-layers change from hydrophilic to hydrophobic as the crystallization proceeds. This two-step approach is new in basic and application driven S-layer research and, most likely, will have advantages for functionalizing surfaces (e.g., by spray-coating) with tailor-made biological sensing layers. |
topic |
S-layer proteins two-step crystallization self-assembly kinetics non-classical crystal growth Ca2+ binding |
url |
http://www.mdpi.com/1422-0067/18/2/400 |
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