Probing the Ononin and Corylin molecules against anti-influenza H1N1 A virus: a detailed active site analysis

被引:2
|
作者
Bangaru, Sathya [1 ,2 ]
Thamotharan, Keerthivasan [2 ]
Manickam, Srinivasan [2 ]
Ramasamy, Anandha Krishnan [2 ]
Perumalsamy, Ramasamy [2 ]
机构
[1] RK Coll Engn, Vijayawada 521456, Andhra Prades, India
[2] SSN Coll Engn, SSN Res Ctr, Dept Phys, Chennai 603110, Tamil Nadu, India
关键词
Druglikeness; Molecular docking; Dipole moment; Molecular dynamics; Binding free energy; INFLUENZA-A VIRUSES; BIOLOGICAL EVALUATION; DOCKING EVALUATION; FT-RAMAN; NEURAMINIDASE; HEMAGGLUTININ; OSELTAMIVIR; DERIVATIVES; INHIBITORS; VIRULENCE;
D O I
10.1007/s11164-023-05035-1
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Ononin and Corylin drug molecules exhibit antiviral effects against the H1N1 influenza A virus, with IC50 values of 30% at 200 mu M and > 115 mu M, respectively. The drug molecules Ononin and Corylin obey the Lipinski's rule of five. Ononin and Corylin's ADMET properties indicate that the molecules can be exploited as an oral drug due to high solubility nature. The combined approach of computational methods such as molecular docking, molecular dynamics simulation and binding free calculations was used as a tool to achieve the drug-receptor intermolecular interactions, molecular electrostatic potential, conformational and energetic stability for Ononin and Corylin with H1N1 NA enzyme. In molecular docking analysis, the Ononin and Corylin molecules holds good inhibition constant (- 4.98 and - 7.53 kcalmol(-1)) and binding affinity (224.92 and 3.02 ki uM (micromol)) with H1N1 NA enzyme, respectively. The NBO, global and local reactivity descriptor were computed to find the stabilization energy, chemical reactivity, kinetic stability and toxicity nature for Ononin and Corylin molecules and also holds good results for both molecules. As a consequence, the Ononin and Corylin molecules has good biological activity and could be used as a probable treatment against the H1N1 influenza A virus.
引用
收藏
页码:3263 / 3282
页数:20
相关论文
共 50 条
  • [31] Proteomic analysis at the subcellular level for host targets against influenza A virus (H1N1)
    Zhao, Haibao
    Yang, Jing
    Li, Kang
    Ding, Xiaoran
    Lin, Ruxian
    Ma, Yongjie
    Liu, Juan
    Zhong, Zhiyin
    Qian, Xiaohong
    Bo, Xiaochen
    Zhou, Zhe
    Wang, Shengqi
    ANTIVIRAL RESEARCH, 2013, 100 (03) : 673 - 687
  • [32] H1N1 Influenza Analysis
    Stephenson, Joan
    JAMA-JOURNAL OF THE AMERICAN MEDICAL ASSOCIATION, 2009, 301 (23): : 2432 - 2432
  • [33] Anti-influenza A (H1N1) virus effect of gallic acid through inhibition of virulent protein production and association with autophagy
    Chang, Cheng-Chieh
    You, Huey-Ling
    Su, Huey-Jen
    Hung, I-Ling
    Kao, Chao-Wei
    Huang, Sheng-Teng
    FOOD SCIENCE & NUTRITION, 2024, 12 (03): : 1605 - 1615
  • [34] Influenza A (H1N1) Virus (Swine Influenza): A Webliography
    Taylor, Mary Virginia
    Stephenson, Priscilla L.
    JOURNAL OF CONSUMER HEALTH ON THE INTERNET, 2009, 13 (04) : 374 - 385
  • [35] Susceptibility of antiviral drugs against 2009 influenza A (H1N1) virus
    Rungrotmongkol, Thanyada
    Intharathep, Pathumwadee
    Malaisree, Maturos
    Nunthaboot, Nadtanet
    Kaiyawet, Nopphorn
    Sompornpisut, Pornthep
    Payungporn, Sanchai
    Poovorawan, Yong
    Hannongbua, Supot
    BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 2009, 385 (03) : 390 - 394
  • [36] Antiviral activity of silver nanoparticles against H1N1 influenza virus
    Seyfi, Manya
    Letafati, Arash
    Edalat, Fahime
    Malekshahi, Somayeh Shatizadeh
    Pirbonyeh, Neda
    Moattari, Afagh
    BMC RESEARCH NOTES, 2025, 18 (01)
  • [37] Antiviral Activity of Binase against the Pandemic Influenza A (H1N1) Virus
    Shah Mahmud, Raihan
    Ilinskaya, O. N.
    ACTA NATURAE, 2013, 5 (04): : 44 - 51
  • [38] Epidemiological analysis of the pandemic influenza A (H1N1) virus in Bhutan
    Wangchuk, S.
    Thapa, B.
    Zangmo, S.
    Jarman, R.
    Bhoomiboonchoo, P.
    Gibbons, R. V.
    INTERNATIONAL JOURNAL OF INFECTIOUS DISEASES, 2012, 16 : E118 - E118
  • [39] CLUSTER ANALYSIS OF THE ORIGINS OF THE NEW INFLUENZA A(H1N1) VIRUS
    Solovyov, A.
    Palacios, G.
    Briese, T.
    Lipkin, W. I.
    Rabadan, R.
    EUROSURVEILLANCE, 2009, 14 (21): : 8 - 62
  • [40] In vitro and in vivo anti-influenza H1N1 activities of a hydroethanolic extract of Cupressus sempervirens cones
    Guinobert
    Constant, S.
    Huang, Y. X.
    Sencio
    Trottein, F.
    Bardot
    Dubourdeaux, M.
    PLANTA MEDICA, 2021, 87 (15) : 1298 - 1298