Afahanam Lucy E, Louis Hitler, Benjamin Innocent, Gber Terkumbur E, Ikot Immaculata J, Manicum Amanda-Lee E
Computational and Bio-Simulation Research Group, University of Calabar, Calabar P.M.B 1115, Nigeria.
Department of Pure and Applied Chemistry, Faculty of Physical Sciences, University of Calabar, Calabar P.M.B 1115, Nigeria.
ACS Omega. 2023 Mar 8;8(11):9861-9872. doi: 10.1021/acsomega.2c06630. eCollection 2023 Mar 21.
Theoretical examination of hydroxyurea adsorption capabilities toward the cyclodextrin surface for proper drug delivery systems was carried out utilizing DFT simulations. The study aims to assess the efficacy of doped cyclodextrin (doped with boron, nitrogen, phosphorus, and sulfur atoms) in increasing its stability and efficiency in intermolecular interactions, hence facilitating optimal drug delivery. The adsorption energies were found to follow a decreasing order of B@ACD-HU>N@ACD-HU>P@ACD-HU>S@ACD-HU with energies of -0.046, -0.0326, -0.015, and 0.944 kcal/mol, respectively. The S@ACD-HU complex, unlike previous systems, had a physical adsorption energy. The N@ACD-HU and B@ACD-HU complexes had the shortest bond lengths of 1.42 Å (N122-C15) and 1.54 Å (B126-C15), respectively. The HOMO and LUMO values were also high in identical systems, -6.367 and -2.918 eV (B@ACD-HU) and -6.278 and -1.736 eV (N@ACD-HU), respectively, confirming no chemical interaction. The N@ACD-HU has the largest energy gap of 4.54 eV. For the QTAIM analysis and plots, the maximum electron density and ellipticity index were detected in B@ACD-HU, 0.600 au (H70-N129) and 0.8685 au (H70-N129), respectively, but N@ACD-HU exhibited a high Laplacian energy of 0.7524 a.u (H133-N122). The fragments' TDOS, OPDOS, and PDOS exhibited a strong bond interaction of greater than 1, and they had different Fermi levels, with the highest value of -8.16 eV in the N@ACD-HU complex. Finally, the NCI analysis revealed that the complexes were noncovalent. According to the literature, the van der Waals form of interactions is used in the intermolecular forces of cyclodextrin cavities. The B@ACD-HU and N@ACD-HU systems were more greenish in color with no spatial interaction. These two systems have outperformed other complexes in intermolecular interactions, resulting in more efficient drug delivery. They had the highest negative adsorption energies, the shortest bond length, the highest HOMO/LUMO energies, the highest energy gap, the highest stabilization energy, the strongest bonding effect, the highest electron density, the highest ellipticity index, and a strong van der Waals interaction that binds the drug and the surface together.
利用密度泛函理论(DFT)模拟对羟基脲在环糊精表面的吸附能力进行了理论研究,以构建合适的药物递送系统。该研究旨在评估掺杂环糊精(掺杂硼、氮、磷和硫原子)在提高其稳定性和分子间相互作用效率方面的效果,从而促进最佳药物递送。发现吸附能的顺序为B@ACD-HU>N@ACD-HU>P@ACD-HU>S@ACD-HU,其能量分别为-0.046、-0.0326、-0.015和0.944 kcal/mol。与先前的体系不同,S@ACD-HU配合物具有物理吸附能。N@ACD-HU和B@ACD-HU配合物的键长最短,分别为1.42 Å(N122-C15)和1.54 Å(B126-C15)。在相同体系中,HOMO和LUMO值也很高,B@ACD-HU分别为-6.367和-2.918 eV,N@ACD-HU分别为-6.278和-1.736 eV,证实不存在化学相互作用。N@ACD-HU的能隙最大,为4.54 eV。对于量子拓扑分析和绘图,在B@ACD-HU中检测到最大电子密度和椭圆率指数,分别为0.600 au(H70-N129)和0.8685 au(H70-N129),但N@ACD-HU表现出较高的拉普拉斯能量,为0.7524 a.u(H133-N122)。片段的总态密度(TDOS)、轨道投影态密度(OPDOS)和投影态密度(PDOS)表现出大于1的强键相互作用,并且它们具有不同的费米能级,在N@ACD-HU配合物中的最高值为-8.16 eV。最后,非共价相互作用(NCI)分析表明这些配合物是非共价的。根据文献,环糊精腔的分子间力中使用范德华相互作用形式。B@ACD-HU和N@ACD-HU体系颜色更偏绿色,没有空间相互作用。这两个体系在分子间相互作用方面优于其他配合物,从而实现更有效的药物递送。它们具有最高的负吸附能、最短的键长、最高的HOMO/LUMO能量、最高的能隙、最高的稳定化能量、最强的键合效应、最高的电子密度、最高的椭圆率指数以及将药物与表面结合在一起的强范德华相互作用。