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通过分子模拟和实验方法设计用于金(111)晶面的肽封端剂。

Peptide Capping Agent Design for Gold (111) Facet by Molecular Simulation and Experimental Approaches.

机构信息

Department of Mechanical and Electro-Mechanical Engineering, National Sun Yat-sen University, Kaohsiung, 804, Taiwan.

Department of Medicinal and Applied Chemistry, Kaohsiung Medical University, Kaohsiung, 807, Taiwan.

出版信息

Sci Rep. 2020 Feb 7;10(1):2090. doi: 10.1038/s41598-020-59144-7.

Abstract

The stochastic tunneling-basin hopping method (STUN-BH) was utilized to obtain the most stable peptide S7 configuration (Ac-Ser-Ser-Phe-Pro-Gln-Pro-Asn-CONH) adsorbed on Au(111) facet. After the most stable S7 configuration was found, molecular dynamics (MD) simulation was conducted to investigate the thermal stability between S7 and Au facet at 300 K in both vacuum and water environment. Moreover, further design sets of peptide sequences on Au(111) facet were used to compare with S7. All molecular simulations were carried out by the large-scale atomic/molecular massively parallel simulator (LAMMPS). The Amber99sb-ILDN force field was employed for modeling the interatomic interaction of peptides, and the TIP3P water was used for the water environment. The CHARMM-METAL force field was introduced to model the S7, PF8 (Ac-Pro-Phe-Ser-Pro-Phe-Ser-Pro-Phe-CONH) and FS8 (Ac-Phe-Ser-Phe-Ser-Phe-Ser-Phe-Ser-CONH) interactions with Au(111). The MD simulation results demonstrate that the morphology of Pro affects the adsorption stability of Phe. Therefore, we designed two sequences, PF8 and FS8, to confirm our simulation result through experiment. The present study also develops a novel low-temperature plasma synthesis method to evaluate the facet selecting performance of the designed peptide sequences of S7, PF8, and FS8. The experimental results suggest that the reduced Au atom seed is captured with the designed peptide sequences and slowing growing under room temperature for 72 hours. The experimental results are in the excellent agreement with the simulation finding that the Pro in the designed peptide sequences plays a critical role in the facet selection for Au atom stacking.

摘要

采用随机隧穿-势垒跳跃法(STUN-BH)获得了吸附在 Au(111)表面上最稳定的肽 S7 构型(Ac-Ser-Ser-Phe-Pro-Gln-Pro-Asn-CONH)。找到最稳定的 S7 构型后,在真空和水环境中于 300 K 下进行分子动力学(MD)模拟以研究 S7 与 Au 表面之间的热稳定性。此外,还进一步设计了一组在 Au(111)表面上的肽序列与 S7 进行比较。所有分子模拟均由大规模原子/分子并行模拟器(LAMMPS)进行。采用 Amber99sb-ILDN 力场来模拟肽的原子间相互作用,采用 TIP3P 水来模拟水环境。引入 CHARMM-METAL 力场来模拟 S7、PF8(Ac-Pro-Phe-Ser-Pro-Phe-Ser-Pro-Phe-CONH)和 FS8(Ac-Phe-Ser-Phe-Ser-Phe-Ser-Phe-Ser-CONH)与 Au(111)的相互作用。MD 模拟结果表明,Pro 的形态会影响 Phe 的吸附稳定性。因此,我们设计了两个序列 PF8 和 FS8,通过实验来验证我们的模拟结果。本研究还开发了一种新的低温等离子体合成方法来评估 S7、PF8 和 FS8 设计肽序列的表面选择性性能。实验结果表明,在室温下,设计的肽序列可以捕获还原的 Au 原子种子并缓慢生长 72 小时。实验结果与模拟结果非常吻合,表明设计肽序列中的 Pro 在 Au 原子堆积的表面选择中起着关键作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1329/7005706/01d386135c23/41598_2020_59144_Fig1_HTML.jpg

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