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Adsorption of GA module onto graphene and graphene oxide: A molecular dynamics simulation study

机译:GA模块在石墨烯和氧化石墨烯上的吸附:分子动力学模拟研究

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Using all-atom molecular dynamics (MD) simulation, we have investigated the adsorption of protein GA module (GA53) onto graphene oxide (GO), compared with similar adsorption onto pristine graphene (PG). We find that: (1) the protein GA53 can be easily and firmly adsorbed onto the surface of GO and PG, but the binding sites are not specific; the main difference is that the secondary structure of GA53 can be well preserved in protein-GO system, while GA53 will partially lose its secondary structure after adsorbed on PG. (2) in protein-GO system, hydroxyl and epoxy groups increase the distance between protein and GO,which weaken their vdW interactions, meanwhile, hydrogen bonds and electrostatic interactions enhance their binding affinity. In protein-PG system, strong vdW interactions between residues of GA53 and PG have destroyed its secondary structure. (3) π-π stacking interactions still exist between aromatic residues and both the basal plane of GO and PG. In comparison with PG, our results suggest that GO presents better biocompatibility to preserve protein secondary structure when simultanenusly absorbing protein.
机译:使用全原子分子动力学(MD)模拟,我们研究了蛋白质GA模块(GA53)在氧化石墨烯(GO)上的吸附,与在原始石墨烯(PG)上的相似吸附相比。我们发现:(1)蛋白质GA53可以轻松,牢固地吸附在GO和PG的表面上,但结合位点不是特异性的;主要区别在于GA53的二级结构可以在蛋白质-GO系统中很好地保留,而GA53吸附在PG上后会部分失去其二级结构。 (2)在蛋白质-GO系统中,羟基和环氧基增加了蛋白质与GO之间的距离,削弱了它们与vdW的相互作用,同时氢键和静电相互作用增强了它们的结合亲和力。在蛋白质-PG系统中,GA53和PG残基之间强大的vdW相互作用破坏了其二级结构。 (3)芳族残基与GO和PG的基面之间仍然存在π-π堆积相互作用。与PG相比,我们的结果表明GO在同时吸收蛋白质时表现出更好的生物相容性,以保留蛋白质的二级结构。

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