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Site-specific protein immobilization through N-terminal oxime linkages
Karen L. Christman
, Rebecca M. Broyer
, Zachary P Tolstyka
, Heather D. Maynard
Chemistry (Twin Cities)
Research output
:
Contribution to journal
›
Article
›
peer-review
76
Scopus citations
Overview
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Keyphrases
Specificity Protein 1
100%
N-terminus
100%
Protein Immobilization
100%
Oxime Bond
100%
Biomaterials
33%
Fluorescence Microscopy
33%
Copolymer
33%
Bond Formation
33%
Aldehydes
33%
Streptavidin
33%
Radical Polymerization
33%
Photolithography
33%
Polymer Film
33%
Bioactivity
33%
Aminooxy
33%
Micropatterning
33%
2-hydroxyethyl Methacrylate
33%
Transamination Reactions
33%
Chemoselective Reaction
33%
Reactive Carbonyl Species
33%
α-ketoamides
33%
Protein Array
33%
Glycol Methacrylate
33%
Tetraethylene Glycol
33%
Protein Nanoparticles
33%
Photoacid Generator
33%
Carbonyl Group
33%
Pharmacology, Toxicology and Pharmaceutical Science
Oxime
100%
Methacrylate
50%
Carbon Tetrachloride
50%
Fluorescence Microscopy
50%
Copolymer
50%
Ethylene Glycol
50%
Carbonyl Derivative
50%
Streptavidin
50%
2 Hydroxyethyl Methacrylate
50%
Biomaterial
50%
Microsphere
50%
Aldehyde
50%
Material Science
Biomaterial
100%
Copolymer
100%
Polymer Films
100%
Free Radical Polymerization
100%
Fluorescence Microscopy
100%
Microsphere
100%