Room temperature, aqueous post-polymerization modification of glycidyl methacrylate-containing polymer brushes prepared via surface-initiated atom transfer radical polymerization. 2010

Raphael Barbey, and Harm-Anton Klok
École Polytechnique Fédérale de Lausanne, Institut des Matériaux, Laboratoire des Polymères, Bâtiment MXD, Station 12, CH-1015 Lausanne, Switzerland.

This manuscript reports on the post-polymerization modification of poly(glycidyl methacrylate) (PGMA) and PGMA-co-poly(2-(diethylamino)ethyl methacrylate) (PGMA(x)-co-PDEAEMA(y)) (co)polymer brushes prepared via surface-initiated atom transfer radical polymerization (SI-ATRP). The aim of this study was to evaluate the ability of tertiary amine groups incorporated in the polymer brush to accelerate the ring-opening of the epoxide groups by primary amines and to facilitate the aqueous, room temperature post-polymerization modification of the brushes. Using Fourier transform infrared (FTIR) spectroscopy to monitor the ring-opening reaction of the epoxide groups, it was found that the incorporation of 2-(diethylamino)ethyl methacrylate (DEAEMA) groups in the PGMA brushes significantly accelerated the rate of the post-polymerization modification reaction with several model amines. The rate enhancement was dependent on the fraction of DEAEMA units incorporated in the copolymer brush. For example, whereas 24 h was necessary to obtain a conversion of approximately 40% for PGMA brushes immersed in a 1 M propylamine solution in water, the same conversion was reached, in identical reaction conditions, after 8 and 2 h with copolymer brushes containing 10 mol % and 25 mol % of DEAEMA along the copolymer chains, respectively. In a final series of proof-of-concept experiments, the feasibility of the glycidyl methacrylate containing brushes to act as substrates for protein immobilization was studied. Using FTIR spectroscopy and quartz crystal microbalance with dissipation (QCM-D) experiments, it could be demonstrated that the incorporation of DEAEMA units not only enhanced the rate of the protein immobilization reaction, but also resulted in higher protein binding capacities as compared to a PGMA homopolymer brush. These features make PGMA(x)-co-PDEAEMA(y) brushes very attractive candidates for the development of protein microarrays, among others.

UI MeSH Term Description Entries
D008689 Methacrylates Acrylic acids or acrylates which are substituted in the C-2 position with a methyl group. Methacrylate
D011108 Polymers Compounds formed by the joining of smaller, usually repeating, units linked by covalent bonds. These compounds often form large macromolecules (e.g., BIOPOLYMERS; PLASTICS). Polymer
D011109 Polymethacrylic Acids Poly-2-methylpropenoic acids. Used in the manufacture of methacrylate resins and plastics in the form of pellets and granules, as absorbent for biological materials and as filters; also as biological membranes and as hydrogens. Synonyms: methylacrylate polymer; poly(methylacrylate); acrylic acid methyl ester polymer. Methacrylic Acid Polymers,Acid Polymers, Methacrylic,Acids, Polymethacrylic,Polymers, Methacrylic Acid
D002621 Chemistry A basic science concerned with the composition, structure, and properties of matter; and the reactions that occur between substances and the associated energy exchange.
D013499 Surface Properties Characteristics or attributes of the outer boundaries of objects, including molecules. Properties, Surface,Property, Surface,Surface Property
D013696 Temperature The property of objects that determines the direction of heat flow when they are placed in direct thermal contact. The temperature is the energy of microscopic motions (vibrational and translational) of the particles of atoms. Temperatures
D013997 Time Factors Elements of limited time intervals, contributing to particular results or situations. Time Series,Factor, Time,Time Factor
D017550 Spectroscopy, Fourier Transform Infrared A spectroscopic technique in which a range of wavelengths is presented simultaneously with an interferometer and the spectrum is mathematically derived from the pattern thus obtained. FTIR,Fourier Transform Infrared Spectroscopy,Spectroscopy, Infrared, Fourier Transform
D058525 Quartz Crystal Microbalance Techniques The use of a quartz crystal microbalance for measuring weights and forces in the micro- to nanogram range. It is used to study the chemical and mechanical properties of thin layers, such as polymer coatings and lipid membranes; and interactions between molecues. Electrochemical Quartz Crystal Impedance Analysis,Quartz Crystal Microbalance,Quartz Crystal Microbalance with Dissipation Monitoring,Microbalance, Quartz Crystal,Microbalances, Quartz Crystal,Quartz Crystal Microbalances
D040081 Protein Array Analysis Ligand-binding assays that measure protein-protein, protein-small molecule, or protein-nucleic acid interactions using a very large set of capturing molecules, i.e., those attached separately on a solid support, to measure the presence or interaction of target molecules in the sample. Protein Chips,Protein Microarrays,Protein Microchips,Protein Profiling Chips,Protein Array Assay,Protein Arrays,Protein Biochips,Protein Microarray Analysis,Protein Microarray Assay,Protein Profiling Microarrays,ProteinChip,Analyses, Protein Array,Analyses, Protein Microarray,Analysis, Protein Array,Analysis, Protein Microarray,Array Analyses, Protein,Array Analysis, Protein,Array Assay, Protein,Array Assays, Protein,Array, Protein,Arrays, Protein,Assay, Protein Array,Assay, Protein Microarray,Assays, Protein Array,Assays, Protein Microarray,Biochip, Protein,Biochips, Protein,Chip, Protein,Chip, Protein Profiling,Chips, Protein,Chips, Protein Profiling,Microarray Analyses, Protein,Microarray Analysis, Protein,Microarray Assay, Protein,Microarray Assays, Protein,Microarray, Protein,Microarray, Protein Profiling,Microarrays, Protein,Microarrays, Protein Profiling,Microchip, Protein,Microchips, Protein,Profiling Chip, Protein,Profiling Chips, Protein,Profiling Microarray, Protein,Profiling Microarrays, Protein,Protein Array,Protein Array Analyses,Protein Array Assays,Protein Biochip,Protein Chip,Protein Microarray,Protein Microarray Analyses,Protein Microarray Assays,Protein Microchip,Protein Profiling Chip,Protein Profiling Microarray,ProteinChips

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