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首页> 外文期刊>ACS applied materials & interfaces >Adsorption of Arginine-Glycine-Aspartate Tripeptide onto Negatively Charged Rutile (110) Mediated by Cations: The Effect of Surface Hydroxylation
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Adsorption of Arginine-Glycine-Aspartate Tripeptide onto Negatively Charged Rutile (110) Mediated by Cations: The Effect of Surface Hydroxylation

机译:阳离子介导的带负电的金红石(110)上精氨酸-甘氨酸-天冬氨酸三肽的吸附:表面羟基化的影响

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Classical molecular dynamics (MD) simulations were employed to investigate the adsorption behaviors of arginine-glycine-aspartate (RGD) tripeptide onto the negatively charged hydroxylatedonhydroxylated rutile (110) surfaces, mediated by biologically important cations (Na~+ or Ca~(2+)). The simulation results indicate that the inherent nature of the cation determines its binding strength, thereby regulating the adsorption geometry of the peptide. The sparse hydroxyl groups on the nonhydroxylated rutile diminish the probability of H-bond formation between RGD and the surface, resulting in an early desorption of the peptide even with a mediating Na~+ ion. In contrast, the negatively charged aspartate (Asp) side chain is bridged to the negatively charged hydroxylated rutile by an inner-sphere Na~+ ion, in coordination with the Asp-rutile hydrogen bonds at the anchoring sites. The inner- and outer-sphere Ca~(2+) ions are demonstrated to be capable of "trapping" RGD on both hydroxylated and nonhydroxylated rutile, in the absence of hydrogen bonds with the surface. The strongly bound inner-sphere mediating Ca~(2+) ion exerts a "gluing" effect on the Asp side chain, producing a tightly packed RGD-rutile complex, whereas a less localized distribution density of the outer-sphere mediating Ca~(2+) ion results in a higher mobility of the Asp side chain. The intramolecular interaction is suggested to facilitate the structural stability of RGD adsorbed on the negative rutile in a "horseshoe" configuration.
机译:经典的分子动力学(MD)模拟用于研究精氨酸-甘氨酸-天冬氨酸(RGD)三肽在带负电的羟基化/非羟基化金红石(110)表面上的吸附行为,这是由生物学上重要的阳离子(Na〜+或Ca〜( 2+))。模拟结果表明,阳离子的固有性质决定了其结合强度,从而调节了肽的吸附几何形状。未羟基化的金红石上的稀疏羟基减少了RGD与表面之间形成H键的可能性,即使在有Na〜+离子介导的情况下,也导致了肽的早期解吸。相反,带负电荷的天冬氨酸(Asp)侧链通过内球Na +离子与锚定位点的Asp-金红石氢键配合而桥接至带负电的羟基化金红石。已证明内球和外球Ca〜(2+)离子能够在表面不存在氢键的情况下将RGD捕获在羟基化和非羟基化的金红石上。牢固结合的内球介导的Ca〜(2+)离子对Asp侧链产生“粘合”作用,产生紧密堆积的RGD金红石复合物,而外球介导的Ca〜(2)的局部分布密度较低。 2+)离子导致Asp侧链的迁移率更高。建议分子内相互作用以“马掌”构型促进吸附在负金红石上的RGD的结构稳定性。

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