Exploration of experimental, theoretical, Hirshfeld surface, molecular docking and electronic excitation studies of Menadione: A potent anti-cancer agent

被引:9
|
作者
Singh, Neha [1 ]
Fatima, Aysha [2 ]
Singh, Meenakshi [1 ]
Kumar, Mukesh [3 ]
Verma, Indresh [4 ]
Muthu, S. [5 ]
Siddiqui, Nazia [6 ]
Javed, Saleem [1 ]
机构
[1] Dr Bhimrao Ambedkar Univ, Inst H Sci, Dept Chem, Agra 282002, Uttar Pradesh, India
[2] Jiwaji Univ, SOS Chem, Gwalior 474011, Madhya Pradesh, India
[3] Shri Khushal Das Univ, Dept Chem, Hanumangarh 335801, Rajasthan, India
[4] Indian Inst Technol, Dept Chem, Kanpur 208016, Uttar Pradesh, India
[5] Aringnar Anna Govt Arts Coll, Dept Phys, Cheyyar 604407, India
[6] Dayalbagh Educ Inst Agra, USIC, Agra 282005, Uttar Pradesh, India
关键词
DFT; TD-DFT; MEP; Molecular docking; Molecular dynamics; ANHARMONIC COUPLING THEORY; SET MODEL CHEMISTRY; H-BONDS; SPECTRAL DENSITY; TOTAL ENERGIES; LINE-SHAPES; CALCIUM; ELECTROPHILICITY; DESCRIPTOR; VITAMIN-K3;
D O I
10.1016/j.molliq.2022.118670
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
In this report, experimental, Computational analysis of menadione (2 methyl-1,4 nathoquinone) has been carried out theoretically by (DFT) density functional theory using B3LYP method with 6-311++G (d,p) basis set. Vibrational spectroscopic study and various other parameters have been accomplished. AIM theory (Atoms in molecules) is used to calculate the ellipticity, iso-surface projection by electron localization function, and binding energies. The computational theoretical spectra of FT-IR showed great agreement with the experimental results. A detailed description of crystal surface intermolecular interactions was carried out and Hirshfeld surface analysis, fingerprint plots were drawn via crystal explorer software. The NBO study helped in analyzing the donor and acceptor interaction. The nucleophilic and electrophilic interactions of the molecule were determined by the Fukui function and Molecular Electrostatic Potential (MEP). TD-DFT with PCM model was done with different solvents. Exploration of electron excitation from occupied to unoccupied orbitals in a single pair of electrons takes place. With DMSO and MeOH as solvents, hole and electron density distribution maps (EDD and HDD) were drawn in an excited state. The HOMO -> LUMO energy gap showed the strength and stability of the molecule. With the help of the electrophilicity index and other parameters, the biological potency of the molecule is theoretically estimated. The drug-likeness was also studied and molecular docking was done using different proteins and with binding energy -9.5, -8.3, and -6.2. The biomolecular stability was investigated using a molecular dynamics simulation. (C) 2022 Elsevier B.V. All rights reserved.
引用
收藏
页数:18
相关论文
共 50 条
  • [1] Experimental Spectroscopic, Quantum Computational, Hirshfeld Surface, Molecular Docking, and Electronic Excitation Studies on an Antibiotic Agent: SDZ
    Kumar, Mukesh
    Fatima, Aysha
    Singh, Meenakshi
    Verma, Indresh
    Khanum, Ghazala
    Muthu, S.
    Althubeiti, Khaled
    Abualnaja, Khamael M.
    Ahmad, Musheer
    Siddiqui, Nazia
    Javed, Saleem
    POLYCYCLIC AROMATIC COMPOUNDS, 2023, 43 (04) : 3122 - 3146
  • [2] Structural elucidation, Hirshfeld surface, DFT, molecular docking and molecular dynamics studies of a novel thiazole derivative as anti-cancer drug
    Neetha, S.
    Santhosh, C.
    Lohith, T. N.
    Sharath, K.
    Sridhar, M. A.
    Sadashiva, M. P.
    JOURNAL OF MOLECULAR STRUCTURE, 2025, 1324
  • [3] Exploration of Experimental, Theoretical, Molecular Docking, and Electronic Excitation Studies of Carboxylate-Appended (2-Pyridyl)Alkylamine Ligand
    Kaur, Pawanjeet
    Verma, Indresh
    Khanum, Ghazala
    Ali, Akram
    Siddiqui, Nazia
    Javed, Saleem
    Arora, Himanshu
    POLYCYCLIC AROMATIC COMPOUNDS, 2024, 44 (04) : 2802 - 2819
  • [4] Docking studies, molecular structure, and spectroscopic analysis of 3-chlorobenzamide as an anti-cancer agent
    Karthik, N.
    Jeyavijayan, S.
    Sumathi, S.
    INDIAN JOURNAL OF BIOCHEMISTRY & BIOPHYSICS, 2024, 61 (04): : 204 - 222
  • [5] Experimental, theoretical, hirschfeld surface, electronic excitation and molecular docking studies on fomepizole(4-Methyl-1H-pyrazole)
    Pooja, Km
    Fatima, Aysha
    Sharma, Arun
    Garima, Km
    Savita, Sandhya
    Kumar, Mukesh
    Verma, Indresh
    Siddiqui, Nazia
    Javed, Saleem
    JOURNAL OF MOLECULAR STRUCTURE, 2022, 1256
  • [6] Quantum Chemical, experimental spectroscopic, Hirshfeld surface and molecular docking studies of the anti-microbial drug Sulfathiazole
    Fatima, Aysha
    Pooja, Km.
    Savita, Sandhya
    Singh, Meenakshi
    Verma, Indresh
    Siddiqui, Nazia
    Javed, Saleem
    JOURNAL OF MOLECULAR STRUCTURE, 2021, 1245
  • [7] Computational, spectroscopic, Hirshfeld surface, electronic state and molecular docking studies on phthalic anhydride
    Fatima, Aysha
    Khanum, Ghazala
    Sharma, Arun
    Garima, Km
    Savita, Sandhya
    Verma, Indresh
    Siddiqui, Nazia
    Javed, Saleem
    JOURNAL OF MOLECULAR STRUCTURE, 2022, 1249
  • [8] Molecular dynamic, Hirshfeld surface, molecular docking and drug likeness studies of a potent anti-oxidant, anti-malaria and anti-Inflammatory medicine: Pyrogallol
    Mir, M. Amin
    Manhas, Farah Manzer
    Andrews, Kim
    Hasnain, Syed M.
    Iqbal, Abid
    Sehar, Shama
    Younis, Adnan
    RESULTS IN CHEMISTRY, 2023, 5
  • [9] Synthesis, Characterization, Crystal Structure, Hirshfeld Surface, Electronic Excitation, Molecular Docking, and DFT Studies on 2-Amino Thiophene Derivative
    Fatima, Aysha
    Khanum, Ghazala
    Verma, Indresh
    Butcher, Ray J.
    Siddiqui, Nazia
    Srivastava, Sanjay Kumar
    Javed, Saleem
    POLYCYCLIC AROMATIC COMPOUNDS, 2023, 43 (02) : 1644 - 1675
  • [10] Quantum computational, spectroscopic, Hirshfeld surface, electronic state and molecular docking studies on sulfanilic acid: An anti-bacterial drug
    Fatima, Aysha
    Khanum, Ghazala
    Savita, Sandhya
    Pooja, Km
    Verma, Indresh
    Siddiqui, Nazia
    Javed, Saleem
    JOURNAL OF MOLECULAR LIQUIDS, 2022, 346