a Department of Chemistry , University of Birjand , Birjand , Iran.
J Biomol Struct Dyn. 2018 Aug;36(10):2517-2529. doi: 10.1080/07391102.2017.1360209. Epub 2017 Aug 22.
In the present work, we apply comprehensive theoretical calculations in order to study Tegafur drug adsorption on the nanostructured functionalized Graphene with hydroxyl, epoxide, carbonyl, and carboxyl groups in the water environment. The physical nature of Tegafur adsorption offers advantages in terms of easy desorption of anticancer molecule with no structural or electronic change of the adsorbed drug. By functionalization of Graphene nanosheet with a carbonyl group, a considerable increase on the binding energy between Tegafur drug and the nanosheet is noted. Diminish in energy gap with the adsorption of Tegafur drug on the functionalized nanosheets shows that the reactivity of functionalized complexes increases upon loading of the drug molecule. Besides, the adsorption process yields an increase of the polarity which causes the possibility of the solubility and dispersion of the considered complexes enhances. This result is indicative the suitability of the nanomaterials toward Tegafur drug delivery within the biological environments. The high solvation energy of Tegafur anticancer drug adsorbed functionalized Graphene models enforced their applicability as nanocarriers in the living system. These results are extremely relevant that the chemical modification of Graphene nanosheet using covalent functionalization scheme is an effectual approach for loading and delivery of Tegafur drug molecule within biological systems.
在本工作中,我们应用综合理论计算来研究替加氟药物在具有羟基、环氧基、羰基和羧基官能团的纳米结构化功能化石墨烯上在水环境中的吸附。替加氟吸附的物理性质具有优势,因为抗癌分子易于解吸,而吸附药物的结构和电子性质没有变化。通过在石墨烯纳米片上官能化羰基,可以注意到替加氟药物与纳米片之间的结合能有相当大的增加。吸附替加氟药物后能隙的减小表明,在负载药物分子后,官能化配合物的反应性增加。此外,吸附过程会增加极性,从而增加考虑复合物的溶解度和分散性。这一结果表明纳米材料在生物环境中替加氟药物输送方面的适用性。替加氟抗癌药物吸附在功能化石墨烯模型上的高溶解能表明它们在活体系中作为纳米载体的适用性。这些结果非常重要,因为使用共价官能化方案对石墨烯纳米片进行化学修饰是在生物体系内负载和输送替加氟药物分子的有效方法。