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RESEARCH PRODUCT
Improved antifouling properties and selective biofunctionalization of stainless steel by employing heterobifunctional silane-polyethylene glycol overlayers and avidin-biotin technology
Tommi IsoniemiVille HynninenMarkku HannulaJ. Jussi ToppariM. HirsimäkiMika ValdenKosti TapioLeena VuoriKimmo LahtonenVesa P. HytönenElina Lehtonensubject
Immobilized enzymeBiofoulingSurface PropertiesBiotin02 engineering and technologyPolyethylene glycol010402 general chemistry01 natural sciencesBacterial AdhesionArticleOverlayerPolyethylene GlycolsBiofoulingchemistry.chemical_compoundLääketieteen bioteknologia - Medical biotechnologybiofunctionalitystainless steelMultidisciplinarySilanesbiologyta114Fysiikka - Physical sciences221 Nanotechnologytechnology industry and agriculture217 Medical engineeringSilanes021001 nanoscience & nanotechnologyAvidinSilane0104 chemical scienceschemistryChemical engineering216 Materials engineeringBiotinylationbiology.proteinruostumaton teräs3111 Biomedicine0210 nano-technologyHydrophobic and Hydrophilic InteractionsAvidinProtein Bindingdescription
AbstractA straightforward solution-based method to modify the biofunctionality of stainless steel (SS) using heterobifunctional silane-polyethylene glycol (silane-PEG) overlayers is reported. Reduced nonspecific biofouling of both proteins and bacteria onto SS and further selective biofunctionalization of the modified surface were achieved. According to photoelectron spectroscopy analyses, the silane-PEGs formed less than 10 Å thick overlayers with close to 90% surface coverage and reproducible chemical compositions. Consequently, the surfaces also became more hydrophilic, and the observed non-specific biofouling of proteins was reduced by approximately 70%. In addition, the attachment of E. coli was reduced by more than 65%. Moreover, the potential of the overlayer to be further modified was demonstrated by successfully coupling biotinylated alkaline phosphatase (bAP) to a silane-PEG-biotin overlayer via avidin-biotin bridges. The activity of the immobilized enzyme was shown to be well preserved without compromising the achieved antifouling properties. Overall, the simple solution-based approach enables the tailoring of SS to enhance its activity for biomedical and biotechnological applications.
year | journal | country | edition | language |
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2016-04-07 | Scientific Reports |