Literature DB >> 15875871

Molecular dynamics simulation of the adsorption of a fibronectin module on a graphite surface.

Giuseppina Raffaini1, Fabio Ganazzoli.   

Abstract

We report atomistic simulations of the adsorption of a fibronectin type I module on a hydrophobic graphite surface. This module comprises only beta-sheets, unlike the albumin fragments previously investigated by us which contained only alpha-helices (Raffaini, G.; Ganazzoli, F. Langmuir 2003, 19, 3403-3412). As done in the latter case, most simulations are carried out in an effective dielectric medium by energy minimizations and molecular dynamics (MD). Further optimizations and MD runs in the explicit presence of water are also performed to assess the stability of the geometries found and to describe the solvation of the adsorbed fibronectin module. The initial adsorption is accompanied by local rearrangements of the strands in contact with the surface, but the overall molecular structure is largely preserved. Much larger rearrangements take place at longer times as found through the MD runs, with the molecule spreading as much as possible so as to maximize the surface coverage, hence the interaction energy, despite a significant strain energy. Energetic aspects of adsorption together with the concomitant size change are discussed in comparison with our previous results for two albumin fragments.

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Year:  2004        PMID: 15875871     DOI: 10.1021/la0357716

Source DB:  PubMed          Journal:  Langmuir        ISSN: 0743-7463            Impact factor:   3.882


  12 in total

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3.  Sequential adsorption of proteins and the surface modification of biomaterials: a molecular dynamics study.

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7.  Study of protein adsorption on octacalcium phosphate surfaces by molecular dynamics simulations.

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Authors:  Tao Wei; Marcelo A Carignano; Igal Szleifer
Journal:  Langmuir       Date:  2011-09-12       Impact factor: 3.882

9.  Molecular dynamics simulation of lysozyme adsorption/desorption on hydrophobic surfaces.

Authors:  Tao Wei; Marcelo A Carignano; Igal Szleifer
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10.  Utilization of Molecular Dynamics Simulation Coupled with Experimental Assays to Optimize Biocompatibility of an Electrospun PCL/PVA Scaffold.

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