Investigation of the anticancer, antibacterial, and anti-inflammatory activity of (R)-(−)-carvone and (S)-(+)-carvone essential oils on Ag13, Ag13-, and Ag13+ silver nanoclusters: A computational study

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Rahadian Zainul, Ibrahim Saeed Gataa, Zainab Younus Abdullah, R. Roopashree, Syeda Wajida Kazmi, K. Phaninder Vinay, N.A. Naser, Safia Obaidur Rab, A. Elawady

2024 Inorganic Chemistry Communications Vol. 168 Article Cited by 1 Quartile

Abstract

New chemical drugs have challenges like adverse side effects and drug release. Essential oils have applications in drug production but face limitations like solubility and instability. On the other hands, silver nanoparticles have a crucial role in the medical field. They find applications in wound dressings, medical equipment, and implant coatings. Their outstanding antimicrobial properties make them highly effective against a wide range of microorganisms. Therefore, in this study, the potential of silver nanoclusters as drug delivery vehicles was closely examined using density functional theory (DFT) computational methods. Specifically, the Ag13, Ag13-, and Ag13+ nanoclusters were considered as nano-carriers for the (5R)-(−)-carvone and (5S)-(+)-carvone molecules in the gas, water, and ethanol phases. The interaction between carvone molecules and silver nanoclusters was analyzed using DFT, quantum theory of atoms in molecules (QTAIM), the electron localization function (ELF), localized orbital locator (LOL), and density of states (DOS) methods. The results showed that the adsorption of carvone on cationic and anionic silver nanoclusters is stable, with negative adsorption energy, while adsorption on neutral nanoclusters is unstable. Weak non-covalent interactions were found between carvone and cationic/anionic nanoclusters in solvent phases, facilitating drug delivery. Adsorption on Ag13- and Ag13+ increased the polarity of the complexes, allowing solubility in polar solvents suitable for biological applications. The UV–Vis analysis showed the red-shifted absorption of [silver-nanocluster] complexes can be used for online detection of carvone compounds. Vibrational frequency calculations indicated the [silver-carvone] complexes are structurally stable, with changes in frequencies due to carvone adsorption, useful for complex identification. The molecular docking results indicated that [silver-carvone] complexes are more suitable for target receptor interactions compared to carvone alone. Consequently, the [silver-carvone] complexes exhibited suitable anti-inflammatory, anticancer, and antimicrobial activities. Notably, the anticancer activity was greater than antibacterial, which was higher than anti-inflammatory. These findings suggest the [silver-carvone] complexes have the potential to be an effective anticancer, antibacterial, and anti-inflammatory drug candidate for treating various diseases. © 2024

Affiliations

Department of Chemistry, Faculty of Mathematics and Natural Sciences, Universitas Negeri Padang, Indonesia; Center for Advanced Material Processing, Artificial Intelligence, and Biophysics Informatics (CAMPBIOTICS), Universitas Negeri Padang, Indonesia; Warith Al-Anbiyaa University, Karbala, 56001, Iraq; Department of Dental Technology, Al-Amarah University College, Maysan, Iraq; Department of Chemistry and Biochemistry, School of Sciences, JAIN (Deemed to be University), Karnataka, Bangalore, India; Chandigarh Pharmacy College, Chandigarh Group of Colleges, Jhanjeri, Punjab, Mohali, 140307, India; Department of ECE, Raghu Engineering College, Andhra Pradesh, Visakhapatnam, 531162, India; College of Pharmacy, Al-Mustaqbal University, Babylon, 51001, Iraq; Department of Clinical Laboratory Sciences, College of Applied Medical Science, King Khalid University, Abha, Saudi Arabia; Independent Researcher, India; Research Fellow, INTI International University, 71800, Nilai, Negeri Sembilan, Malaysia; Professor Fellow, Superior University, Lahore, Pakistan