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Computational and network pharmacology analysis of bioflavonoids as possible natural antiviral compounds in COVID-19.
Patil, Rajesh; Chikhale, Rupesh; Khanal, Pukar; Gurav, Nilambari; Ayyanar, Muniappan; Sinha, Saurabh; Prasad, Satyendra; Dey, Yadu Nandan; Wanjari, Manish; Gurav, Shailendra S.
  • Patil R; Sinhgad Technical Education Society's, Smt. Kashibai Navale College of Pharmacy, Pune, Maharashtra, India.
  • Chikhale R; School of Pharmacy, University of East Anglia, Norwich Research Park, Norwich, UK.
  • Khanal P; Department of Pharmacology and Toxicology, KLE College of Pharmacy Belagavi, KLE Academy of Higher Education and Research (KAHER), Belagavi, 590010, India.
  • Gurav N; PES's Rajaram and Tarabai Bandekar College of Pharmacy, Ponda, Goa University, Goa, 403401, India.
  • Ayyanar M; Department of Botany, A. Veeriya Vandayar Memorial Sri Pushpam College (Autonomous), Affiliated to Bharathidasan University, Poondi, Thanjavur, 613 503, India.
  • Sinha S; Department of Pharmaceutical Sciences, Mohanlal Shukhadia University, Udaipur, Rajasthan, 313 001, India.
  • Prasad S; Department of Pharmaceutical Sciences, R.T.M. University, Nagpur, Maharashtra, 440033, India.
  • Dey YN; School of Pharmaceutical Technology, Adamas University, Kolkata, 700126, West Bengal, India.
  • Wanjari M; Regional Ayurveda Research Institute for Drug Development, Gwalior, 474009, Madhya Pradesh, India.
  • Gurav SS; Department of Pharmacognosy and Phytochemistry, Goa College of Pharmacy, Panaji, Goa University, Goa, 403 001, India.
Inform Med Unlocked ; 22: 100504, 2021.
Article in English | MEDLINE | ID: covidwho-988088
ABSTRACT
Bioflavonoids are the largest group of plant-derived polyphenolic compounds with diverse biological potential and have also been proven efficacious in the treatment of Severe Acute Respiratory Syndrome (SARS) and Middle East Respiratory Syndrome (MERS). The present investigation validates molecular docking, simulation, and MM-PBSA studies of fifteen bioactive bioflavonoids derived from plants as a plausible potential antiviral in the treatment of COVID-19. Molecular docking studies for 15 flavonoids on the three SARS CoV-2 proteins, non-structural protein-15 Endoribonuclease (NSP15), the receptor-binding domain of spike protein (RBD of S protein), and main protease (Mpro/3CLpro) were performed and selected protein-ligand complexes were subjected to Molecular Dynamics simulations. The molecular dynamics trajectories were subjected to free energy calculation by the MM-PBSA method. All flavonoids were further assessed for their effectiveness as adjuvant therapy by network pharmacology analysis on the target proteins. The network pharmacology analysis suggests the involvement of selected bioflavonoids in the modulation of multiple signaling pathways like p53, FoxO, MAPK, Wnt, Rap1, TNF, adipocytokine, and leukocyte transendothelial migration which plays a significant role in immunomodulation, minimizing the oxidative stress and inflammation. Molecular docking and molecular dynamics simulation studies illustrated the potential of glycyrrhizic acid, amentoflavone, and mulberroside in inhibiting key SARS-CoV-2 proteins and these results could be exploited further in designing future ligands from natural sources.
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Full text: Available Collection: International databases Database: MEDLINE Type of study: Prognostic study Language: English Journal: Inform Med Unlocked Year: 2021 Document Type: Article Affiliation country: J.imu.2020.100504

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Full text: Available Collection: International databases Database: MEDLINE Type of study: Prognostic study Language: English Journal: Inform Med Unlocked Year: 2021 Document Type: Article Affiliation country: J.imu.2020.100504