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ssDNA 和阳离子聚噻吩的分子动力学模拟。

Molecular dynamics simulation of ssDNA and cationic polythiophene.

机构信息

Faculty of Science, Department of Chemistry, Izmir Institute of Technology, 35430, Urla, Izmir, Turkiye.

Faculty of Science, Department of Chemistry, Izmir Institute of Technology, 35430, Urla, Izmir, Turkiye.

出版信息

J Mol Graph Model. 2023 Sep;123:108501. doi: 10.1016/j.jmgm.2023.108501. Epub 2023 May 2.

Abstract

In this work, molecular dynamics simulations of complexes composed of single strand DNA (ssDNA) sequences and cationic oligothiophenes are performed to understand experimental findings and the sensing ability of polythiophene electrolytes toward ssDNA. The simulation results exhibit no significant structural effect for replacing the cationic amine moiety with imidazole derivative on the side group of the oligomer. Adding a homopurine strand elongates the oligomer backbone; on the contrary, mixing up the homopyrimidine strand causes compression. On the other hand, these ssDNAs do not notably affect the compactness of the oligomer backbones. The anion-cation interactions play an essential role in the structural and spectroscopic change of cationic polythiophenes (CPTs) upon complexation with ssDNAs. The red shift of CPTs in the UV-VIS spectra with the addition of homopurine strands might be explained by the strong anion-cation, weak π -cation interactions, and high binding affinities. Nonpolar interactions (vdW and SA) and complex solvation energies dominate binding free energies. Hydrogen interaction analyses show that oligomers most likely approach the ssDNAs from their backbone upon complexation except for the duplex containing homopyrimidine strand and oligothiophene possessing imidazole derivative side chain.

摘要

在这项工作中,对由单链 DNA(ssDNA)序列和阳离子寡聚噻吩组成的复合物进行了分子动力学模拟,以了解实验结果以及聚噻吩电解质对 ssDNA 的传感能力。模拟结果表明,在寡聚物的侧链上用咪唑衍生物取代阳离子胺基对结构没有显著影响。添加同嘌呤链会使寡聚物主链延长;相反,混合同嘧啶链会导致压缩。另一方面,这些 ssDNA 不会显著影响寡聚物主链的紧凑性。阴离子-阳离子相互作用在 ssDNA 与阳离子聚噻吩(CPT)络合时对 CPT 的结构和光谱变化起着重要作用。随着同嘌呤链的加入,CPTs 在紫外-可见光谱中的红移可能是由于强阴离子-阳离子、弱π-阳离子相互作用和高结合亲和力。非极性相互作用(vdW 和 SA)和复合物溶剂化能主导结合自由能。氢键相互作用分析表明,除了含有同嘧啶链的双链体和具有咪唑衍生物侧链的寡聚噻吩外,寡聚物在复合物形成时很可能从其主链接近 ssDNA。

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