Investigation of the Detection of Thioguanine Anti-Cancer Drug by Using of X12O12 (X = mg, Zn) Nanocage

Habeeb Chyad, Mustafa and Ahmed, Abdulrahman T. and Sanghvi, Gaurav and Ganesan, Subbulakshmi and Shankhyan, Aman and Krithiga, T. and Kubaev, Aziz and Panigrahi, Rajashree and Mahal, Ahmed and Faris Alotaibi, Hadil (2025) Investigation of the Detection of Thioguanine Anti-Cancer Drug by Using of X12O12 (X = mg, Zn) Nanocage. Computational and Theoretical Chemistry, 1249: 115270. ISSN 2210-2728 (online)

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Abstract

Nanomaterials play a vital role in pharmaceutical research, particularly in cancer treatment like Thioguanine (TG). This study aimed to investigate how sensitive MgO and ZnO nanocages are in detecting TG through application of density functional theory (DFT). Various analyses have been executed, including examinations of sensor mechanism, non-covalent interactions (NCI), natural bond orbitals (NBO), frontier molecular orbitals (FMOs), and adsorption energy (Eads). Nitrosourea adsorption on ZnO demonstrates the highest Eads values at −53.98 kcal/mol, whereas MgO complexes exhibit lower Eads. Energy gaps (Eg) of MgO and ZnO decline from 6.76 eV and 5.98 eV, respectively, compared to bare nanocage, revealing potential for utilizing these cages in Thioguanine detection. Analysis of frontier molecular orbitals indicates that 6 m-ZnO@TG complex exhibits the smallest Eg at 2.33 eV among all designed complexes. Additionally, recovery time of TG from MgO nanocages is notably shorter compared to ZnO nanocages. Topological analysis suggests a non-covalent interaction between ZnO and MgO nanocages. Furthermore, electrical conductivity values rise following the adsorption process. ZnO complex exhibits the highest electrical conductivity. Sensor mechanism demonstrates heightened sensitivity in ZnO complexes attributed to their narrow energy gaps. Consequently, ZnO stands out as a promising candidate for detecting TG and as a delivery system for TG in cancer treatment.

Item Type: Article
Uncontrolled Keywords: Thioguanine detection, ZnO nanocages, MgO nanocages, Density Functional Theory, Cancer nanomedicine
Subjects: Q Science > QD Chemistry
R Medicine > RC Internal medicine > RC0254 Neoplasms. Tumors. Oncology (including Cancer)
R Medicine > RM Therapeutics. Pharmacology
T Technology > TP Chemical technology
Divisions: Department of Medical Biochemical Analysis > Research papers
Depositing User: ePrints Depositor
Date Deposited: 15 Aug 2025 15:42
Last Modified: 15 Aug 2025 15:42
URI: https://eprints.cihanuniversity.edu.iq/id/eprint/4803

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