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金刚烷胺与十二烷基硫酸钠表面活性剂混合物在氮化硼纳米管上的生物物理评估:分子动力学研究

Biophysical assessment of amantadine and SDS surfactant mixture onto boron nitride nanotube: a molecular dynamics investigation.

作者信息

Shamizad Farzaneh, Habibzadeh Mashatooki Mohaddeseh, Ghalami-Choobar Bahram

机构信息

Department of Chemistry, Faculty of Science, University of Guilan, P.O. Box: 19141, Rasht, Iran.

出版信息

J Mol Model. 2023 Oct 9;29(11):333. doi: 10.1007/s00894-023-05736-9.

Abstract

CONTEXT

The aggregation and adsorption of amantadine and sodium dodecyl sulfate on the boron nitride nanotubes in aqueous system were investigated, employing the classical molecular dynamics method. The aqueous system containing amantadine and sodium dodecyl sulfate was investigated by self-diffusion of the molecules, with particular emphasis on their center of mass mean square displacement. The radial distribution function and dipole moment measurement were used to analyze the water effect on the aggregation and molecular interaction between amantadine and sodium dodecyl sulfate in the complex. In turn, the amantadine molecules are able to develop water monolayers at the aqueous solution but show no noticeable aggregated adsorption in the fluid. In contrast, sodium dodecyl sulfate self-aggregation on the boron nitride nanotube efficiently occurs, and so the effect of sodium dodecyl sulfate on aggregated adsorption of amantadine was studied. Our results show that in the presence of sodium dodecyl sulfate at critical micelle concentration, its effect on the aggregation of amantadine was enhanced onto boron nitride nanotube compared to just pure sodium dodecyl sulfate or amantadine on boron nitride nanotube. Our simulations show a remarkable restructuring and enhanced orientation of the water molecules around sodium dodecyl sulfate and amantadine adsorbed on boron nitride nanotube.

METHOD

All molecular dynamics simulations were done using NAMD-2.9 package with CHARMM-36 force field. The nanotube PDB file was made by VMD with (12, 12) indexes. The nanotube atoms were considered to be fixed and periodic during the simulation process, and the ends did not cap with hydrogens. The initial PDB file of components was saved from ChemOffice software, and the webservers to obtain the charge and topology files were Reddb and Swiss Param webservers. The VMD software was used for structural visualizations and graphical analysis.

摘要

背景

采用经典分子动力学方法研究了金刚烷胺和十二烷基硫酸钠在水体系中于氮化硼纳米管上的聚集和吸附情况。通过分子的自扩散对含有金刚烷胺和十二烷基硫酸钠的水体系进行了研究,特别关注其质心均方位移。利用径向分布函数和偶极矩测量来分析水对复合物中金刚烷胺和十二烷基硫酸钠之间聚集及分子相互作用的影响。相应地,金刚烷胺分子能够在水溶液中形成水单层,但在流体中未表现出明显的聚集吸附。相比之下,十二烷基硫酸钠在氮化硼纳米管上有效地发生了自聚集,因此研究了十二烷基硫酸钠对金刚烷胺聚集吸附的影响。我们的结果表明,在临界胶束浓度下存在十二烷基硫酸钠时,与仅在氮化硼纳米管上的纯十二烷基硫酸钠或金刚烷胺相比,其对金刚烷胺在氮化硼纳米管上聚集的影响增强。我们的模拟显示,吸附在氮化硼纳米管上的十二烷基硫酸钠和金刚烷胺周围的水分子发生了显著的重构且取向增强。

方法

所有分子动力学模拟均使用带有CHARMM - 36力场的NAMD - 2.9软件包进行。纳米管的PDB文件由VMD以(12, 12)索引生成。在模拟过程中,纳米管原子被视为固定且呈周期性,末端未用氢原子封端。组分的初始PDB文件从ChemOffice软件保存,获取电荷和拓扑文件的网络服务器是Reddb和Swiss Param网络服务器。VMD软件用于结构可视化和图形分析。

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