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通过单壁碳纳米管解开 DNA 链:分子对接和 MD 模拟方法。

Unwinding DNA strands by single-walled carbon nanotubes: Molecular docking and MD simulation approach.

机构信息

Université Clermont Auvergne, CNRS, Clermont Auvergne INP, Institut de Chimie de Clermont-Ferrand, F-63000, Clermont-Ferrand, France.

Université Clermont Auvergne, CNRS, Clermont Auvergne INP, Institut de Chimie de Clermont-Ferrand, F-63000, Clermont-Ferrand, France.

出版信息

J Mol Graph Model. 2024 Dec;133:108882. doi: 10.1016/j.jmgm.2024.108882. Epub 2024 Oct 11.

DOI:10.1016/j.jmgm.2024.108882
PMID:39405984
Abstract

Despite the growing research into the use of carbon nano-tubes (CNTs) in science and medicine, concerns about their potential toxicity remain insufficiently studied. This study utilizes molecular docking calculations combined by molecular dynamics simulations to investigate the dynamic intricacies of the interaction between single-walled carbon nanotubes (swCNTs) and double-stranded DNA (dsDNA). By examining the influence of swCNT characteristics such as length, radius, and chirality, our findings shed light on the complex interplay that shapes the binding affinity and stability of the dsDNA-swCNT complex. Molecular docking results identify a zigzag swCNT, with a radius of 0.16 Å and a length of 38 Å, as exhibiting the highest binding affinity with dsDNA (-23.9 kcal/mol). Comprehensive analyses, spanning docking results, binding energies, RMSD, radius of gyration, and potential of mean force (PMF) profiles, provide a detailed understanding of the denaturation dynamics. The PMF profiles reveal the thermodynamic feasibility of the DNA-CNT interaction, outlining distinct energy landscapes and barriers: when the selected swCNT binds within the dsDNA groove, the system becomes trapped at the first and second local energy minima, occurring at 1.48 nm and 1.00 nm, respectively. Intramolecular hydrogen bond calculations show a significant reduction, affirming the denaturing effect of swCNTs on DNA. Furthermore, the study reveals a significant reduction in the binding affinity of Ethidium Bromide (EB) to dsDNA following its interaction with swCNT, with a decrease in EB binding to dsDNA of approximately 13.2 %. This research offers valuable insights into the toxic effects of swCNTs on dsDNA, contributing to a rationalization of the cancerous potential of swCNTs.

摘要

尽管对碳纳米管(CNTs)在科学和医学中的应用的研究不断增加,但对其潜在毒性的关注仍研究不足。本研究利用分子对接计算结合分子动力学模拟,研究了单壁碳纳米管(swCNT)与双链 DNA(dsDNA)之间相互作用的动态复杂性。通过研究 swCNT 特性(如长度、半径和手性)的影响,我们的发现揭示了塑造 dsDNA-swCNT 复合物结合亲和力和稳定性的复杂相互作用。分子对接结果表明,具有 0.16Å 半径和 38Å 长度的锯齿形 swCNT 与 dsDNA 具有最高的结合亲和力(-23.9kcal/mol)。综合分析包括对接结果、结合能、RMSD、回转半径和平均力势(PMF)曲线,提供了对变性动力学的详细理解。PMF 曲线揭示了 DNA-CNT 相互作用的热力学可行性,概述了不同的能量景观和障碍:当所选的 swCNT 结合到 dsDNA 沟槽中时,系统被困在第一个和第二个局部能量最小值中,分别发生在 1.48nm 和 1.00nm。分子内氢键计算表明氢键显著减少,证实了 swCNTs 对 DNA 的变性作用。此外,研究表明,在 swCNT 与 dsDNA 相互作用后,Ethidium Bromide(EB)与 dsDNA 的结合亲和力显著降低,EB 与 dsDNA 的结合减少约 13.2%。这项研究为 swCNTs 对 dsDNA 的毒性作用提供了有价值的见解,有助于合理化 swCNTs 的致癌潜力。

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