Institute for Frontier Materials, Deakin University , Geelong, Victoria 3216, Australia.
Langmuir. 2017 Apr 18;33(15):3742-3754. doi: 10.1021/acs.langmuir.6b04558. Epub 2017 Apr 7.
The adsorption of three homo-tripeptides, HHH, YYY, and SSS, at the aqueous Au interface is investigated, using molecular dynamics simulations. We find that consideration of surface facet effects, relevant to experimental conditions, opens up new questions regarding interpretations of current experimental findings. Our well-tempered metadynamics simulations predict the rank ordering of the tripeptide binding affinities at aqueous Au(111) to be YYY > HHH > SSS. This ranking differs with that obtained from existing experimental data which used surface-immobilized Au nanoparticles as the target substrate. The influence of Au facet on these experimental findings is then considered, via our binding strength predictions of the relevant amino acids at aqueous Au(111) and Au(100)(1 × 1). The Au(111) interface supports an amino acid ranking of Tyr > HisA ≃ HisH > Ser, matching that of the tripeptides on Au(111), while the ranking on Au(100) is HisA > Ser ≃ Tyr ≃ HisH, with only HisA showing non-negligible binding. The substantial reduction in Tyr amino acid affinity for Au(100) vs Au(111) offers one possible explanation for the experimentally observed weaker adsorption of YYY on the nanoparticle-immobilized substrate compared with HHH. In a separate set of simulations, we predict the structures of the adsorbed tripeptides at the two aqueous Au facets, revealing facet-dependent differences in the adsorbed conformations. Our findings suggest that Au facet effects, where relevant, may influence the adsorption structures and energetics of biomolecules, highlighting the possible influence of the structural model used to interpret experimental binding data.
采用分子动力学模拟研究了三种同三肽,即 HHH、YYY 和 SSS,在水相金界面的吸附情况。我们发现,考虑到与实验条件相关的表面晶面效应,会对当前实验结果的解释提出新的问题。我们经过精心调整的元动力学模拟预测,在水相 Au(111)上三肽的结合亲和力顺序为 YYY > HHH > SSS。这个排序与使用表面固定化 Au 纳米粒子作为靶底物的现有实验数据所得到的排序不同。然后,我们通过对相关氨基酸在水相 Au(111)和 Au(100)(1 × 1)上的结合强度的预测,考虑了 Au 晶面对这些实验结果的影响。Au(111)界面支持氨基酸 Tyr > HisA ≃ HisH > Ser 的排序,与 Au(111)上三肽的排序相匹配,而在 Au(100)上的排序为 HisA > Ser ≃ Tyr ≃ HisH,只有 HisA 表现出不可忽略的结合。与 Au(111)相比,Tyr 氨基酸对 Au(100)的亲和力显著降低,这为实验观察到的 YYY 在纳米粒子固定化基底上的吸附比 HHH 弱提供了一种可能的解释。在另一组模拟中,我们预测了在两种水相 Au 晶面上吸附的三肽的结构,揭示了吸附构象的晶面依赖性差异。我们的研究结果表明,在相关情况下,Au 晶面效应可能会影响生物分子的吸附结构和能量,突出了用于解释实验结合数据的结构模型的可能影响。