Tariq Amina, Nazir Sidra, Arshad Ahmad Wahab, Nawaz Faisal, Ayub Khurshid, Iqbal Javed
Department of Chemistry, University of Agriculture Faisalabad 38040 Pakistan
Faisalabad Institute of Cardiology Faisalabad Pakistan.
RSC Adv. 2019 Aug 6;9(42):24325-24332. doi: 10.1039/c9ra02778e. eCollection 2019 Aug 2.
In this study, the therapeutic potential of phosphorene as a drug-delivery system for chlorambucil to treat cancer was evaluated. The geometric, electronic and excited state properties of chlorambucil, phosphorene and the phosphorene-chlorambucil complex were evaluated to explore the efficiency of phosphorene as a drug-delivery system. The nature of interaction between phosphorene and chlorambucil is illustrated through a non-covalent interaction (NCI) plot, which illustrated that weak forces of interaction are present between phosphorene and chlorambucil. These weak intermolecular forces are advantageous for an easy offloading of the drug at the target. Frontier molecular orbital analysis revealed that charge was transferred from chlorambucil to phosphorene during excitation from the HOMO to LUMO. The charge transfer was further supplemented by charge-decomposition analysis (CDA). Excited-state calculations showed that the was red-shifted by 79 nm for the phosphorene-chlorambucil complexes. The photo-induced electron-transfer (PET) process was observed for different excited states, which could be well explained visually based on the electron-hole theory. The photo-induced electron transfer suggests that a quenching of fluorescence occurs upon interaction. This study confirmed that phosphorene possesses significant therapeutic potential as a drug-delivery system for chlorambucil to treat cancer. This study will also motivate further exploration of other 2D materials for drug-delivery applications.
在本研究中,评估了磷烯作为苯丁酸氮芥治疗癌症的药物递送系统的治疗潜力。对苯丁酸氮芥、磷烯及磷烯 - 苯丁酸氮芥复合物的几何、电子和激发态性质进行了评估,以探究磷烯作为药物递送系统的效率。通过非共价相互作用(NCI)图说明了磷烯与苯丁酸氮芥之间相互作用的性质,该图表明磷烯与苯丁酸氮芥之间存在弱相互作用力。这些弱分子间力有利于药物在靶点处的轻松卸载。前沿分子轨道分析表明,在从最高占据分子轨道(HOMO)到最低未占据分子轨道(LUMO)的激发过程中,电荷从苯丁酸氮芥转移到了磷烯。电荷转移通过电荷分解分析(CDA)得到了进一步补充。激发态计算表明,磷烯 - 苯丁酸氮芥复合物的 发生了79 nm的红移。在不同激发态下观察到了光诱导电子转移(PET)过程,基于电子 - 空穴理论可以直观地很好解释这一过程。光诱导电子转移表明相互作用时会发生荧光猝灭。本研究证实,磷烯作为苯丁酸氮芥治疗癌症的药物递送系统具有显著的治疗潜力。本研究还将推动对其他二维材料用于药物递送应用的进一步探索。