Theoretical study of a single-walled carbon nanotube and a cellulose biofiber as 5-fluorouracil anti-cancer drug carriers

Eshraq Ahmed Abdullah
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引用次数: 1

Abstract

Chemotherapy is one of the most valuable and widely available option in cancer treatment. However, a method of delivering the drug to achieve a therapeutic effect still a considerable challenge. Therefore, this study seeks to identify the non-bonding interaction of 5-fluorouracil anticancer drug with a single walled carbon nanotube and a Cellulose bio-fiber using density functional theory and molecular mechanics simulations. To do that, adsorption locator and DMol3 modules were utilized to determine the electronic and optical properties of carriers before and after adsorption processes. The interaction energies indicate that the 5-fluorouracil molecule can physically adsorb and the optimized geometries are stable. The charge transfer occurs between N4-H10 bond of the 5-fluorouracil molecule and the cellulose carrier by a synergistic effect of hydrogen bond formation and van der Waals forces. This effect smoothly transforms into van der Waals interactions by O3, N4, and N5 atoms in the case of single-walled carbon nanotubes. There is a clear difference in the absorption peak and a significant narrowing of the molecular energy gap of a cellulose complex because of the shifting of the electron accepting center to a drug molecule. The conductor-like screening model shows the affinity of the complexes toward hydrogen bond acceptor, which enhances their solubility in biological systems. A remarkable influence in the case of the cellulose complex works as a starting point to use natural polymers as drug delivery carriers.
单壁碳纳米管和纤维素生物纤维作为5-氟尿嘧啶抗癌药物载体的理论研究
化疗是癌症治疗中最有价值和最广泛可用的选择之一。然而,递送药物以达到治疗效果的方法仍然是一个相当大的挑战。因此,本研究试图利用密度泛函理论和分子力学模拟来确定5-氟尿嘧啶抗癌药物与单壁碳纳米管和纤维素生物纤维的非键相互作用。为此,使用吸附定位器和DMol3模块来确定吸附过程前后载体的电子和光学性质。相互作用能表明5-氟尿嘧啶分子可以物理吸附,优化的几何结构是稳定的。通过氢键形成和范德华力的协同作用,电荷转移发生在5-氟尿嘧啶分子的N4-H10键和纤维素载体之间。在单壁碳纳米管的情况下,这种效应平稳地转化为O3、N4和N5原子的范德华相互作用。由于电子接受中心向药物分子移动,纤维素复合物的吸收峰存在明显差异,分子能隙显著缩小。类导体筛选模型显示了配合物对氢键受体的亲和力,这增强了它们在生物系统中的溶解度。在纤维素复合物的情况下,一个显著的影响作为使用天然聚合物作为药物递送载体的起点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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