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首页> 外文期刊>Journal of Computer-Aided Molecular Design >Ab initio study on the noncovalent adsorption of camptothecin anticancer drug onto graphene, defect modified graphene and graphene oxide
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Ab initio study on the noncovalent adsorption of camptothecin anticancer drug onto graphene, defect modified graphene and graphene oxide

机译:从头开始研究喜树碱抗癌药在石墨烯,缺陷修饰的石墨烯和氧化石墨烯上的非共价吸附

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摘要

The application of graphene and related nanomaterials like boron nitride (BN) nanosheets, BN-graphene hybrid nanomaterials, and graphene oxide (GO) for adsorption of anticancer chemotherapeutic camptothecin (CPT) along with the effect on electronic properties prior to functionalization and after functionalization has been reported using density functional theory (DFT) calculations. The inclusion of dispersion correction to DFT is instrumental in accounting for van der Waals π-π stacking between CPT and the nanomaterial. The adsorption of CPT exhibits significant strain within the nanosheets and noncovalent adsorption of CPT is thermodynamically favoured onto the nanosheets. In case of GO, surface incorporation of functional groups result in significant crumpling along the basal plane and the interaction is basically mediated by H-bonding rather than π-π stacking. Docking studies predict the plausible binding of CPT, CPT functionalized graphene and GO with topoisomerase I (top 1) signifying that CPT interacts through π stacking with AT and GC base pairs of DNA and in presence of nano support, DNA bases preferentially gets bound to the basal plane of graphene and GO rather than the edges. At a theoretical level of understanding, our studies point out the noncovalent interaction of CPT with graphene based nanomaterials and GO for loading and delivery of anticancer chemotherapeutic along with active binding to Top1 protein.
机译:石墨烯及其相关纳米材料(如氮化硼(BN)纳米片,氮化硼-石墨烯杂化纳米材料和氧化石墨烯(GO))在抗癌化学喜树碱(CPT)的吸附以及功能化之前和功能化之后对电子性能的影响方面已得到应用使用密度泛函理论(DFT)计算进行了报道。将色散校正包含到DFT中有助于解决CPT与纳米材料之间的范德华π-π堆积问题。 CPT的吸附在纳米片内表现出显着的应变,并且热力学上有利于CPT的非共价吸附到纳米片上。在GO的情况下,官能团的表面结合导致沿基面的显着皱缩,并且相互作用基本上是通过H键而不是π-π堆叠来介导的。对接研究预测CPT,CPT功能化的石墨烯和GO与拓扑异构酶I的合理结合(顶部1)表明CPT通过π堆积与DNA的AT和GC碱基对相互作用,并且在存在纳米载体的情况下,DNA碱基优先与DNA结合。石墨烯和GO的基面,而不是边缘。在理论上的理解水平上,我们的研究指出了CPT与基于石墨烯的纳米材料和GO的非共价相互作用,用于装载和递送抗癌化学疗法以及与Top1蛋白的活性结合。

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