Literature DB >> 21614699

Protein resistance of dextran and dextran-poly(ethylene glycol) copolymer films.

Darby Kozak1, Annie Chen, Jacinda Bax, Matt Trau.   

Abstract

The protein resistance of dextran and dextran-poly(ethylene glycol) (PEG) copolymer films was examined on an organosilica particle-based assay support. Comb-branched dextran-PEG copolymer films were synthesized in a two step process using the organosilica particle as a solid synthetic support. Particles modified with increasing amounts (0.1-1.2 mg m(-2)) of three molecular weights (10,000, 66,900, 400,000 g mol(-1)) of dextran were found to form relatively poor protein-resistant films compared to dextran-PEG copolymers and previously studied PEG films. The efficacy of the antifouling polymer films was found to be dependent on the grafted amount and its composition, with PEG layers being the most efficient, followed by dextran-PEG copolymers, and dextran alone being the least efficient. Immunoglobulin gamma (IgG) adsorption decreased from ∼5 to 0.5 mg m(-2) with increasing amounts of grafted dextran, but bovine serum albumin (BSA) adsorption increased above monolayer coverage (∼2 mg m(-2)) indicating ternary adsorption of the smaller protein within the dextran layer.

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Year:  2011        PMID: 21614699      PMCID: PMC3221008          DOI: 10.1080/08927014.2011.584618

Source DB:  PubMed          Journal:  Biofouling        ISSN: 0892-7014            Impact factor:   3.209


  18 in total

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6.  Protein-rejecting ability of surface-bound dextran in end-on and side-on configurations: comparison to PEG.

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7.  Poly(ethylene oxide) Grafted to Silicon Surfaces: Grafting Density and Protein Adsorption.

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8.  Proteins and cells on PEG immobilized silicon surfaces.

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9.  Three-dimensional structure of an intact human immunoglobulin.

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10.  Ternary protein adsorption onto brushes: strong versus weak.

Authors:  A Halperin; M Kröger
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  2 in total

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2.  Chemical Targeting of Rhodol Voltage-Sensitive Dyes to Dopaminergic Neurons.

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