Revisiting the South Indian Traditional Plants against Several Targets of SARS-CoV-2 - An in silico Approach

Author:

Jupudi Srikanth1ORCID,Rajala Srikala2ORCID,Gaddam Narasimha Rao3,Swaminathan Gomathi1ORCID,Peesa Jaya Preethi4,Rajagopal Kalirajan1ORCID,Azam Mohammed Afzal1ORCID

Affiliation:

1. Department of Pharmaceutical Chemistry, JSS College of Pharmacy, JSS Academy of Higher Education & Research, Ooty, Nilgiris, Tamil Nadu, India

2. Department of Pharmaceutical Chemistry, School of Pharmacy, Guru Nanak Institutions Technical Campus, Hyderabad, Telangana, India

3. Department of Pharmacology, JSS College of Pharmacy, JSS Academy of Higher Education & Research, Ooty, Nilgiris, Tamil Nadu, India

4. Safety Associate, IQVIA, Bangalore, Karnataka, India

Abstract

Background: The south Indian Telugu states will celebrate a new year called ‘Ugadi’ which is a south Indian traditional festival. The ingredients used in ugadi pachadi have often also been used in food as well as traditional Ayurveda and Siddha medicinal preparations. Coronaviruses (CoVs) are a diverse family of enveloped positive-sense single-stranded RNA viruses which can infect humans and have the potential to cause large-scale outbreaks. Objective: Considering the benefits of ugadi pachadi, we investigated the binding modes of various phytochemical constituents reported from its ingredients against five targets of SARS-CoV-2. Methods: Flexible-ligand docking simulations were achieved through AutoDock version 1.5.6. Following 50ns of molecular dynamics simulation using GROMACS 2018.1 software and binding free energy (ΔGbind) of the protein-ligand complexes were calculated using the g_mmpbsa tool. ADME prediction was done using Qikprop of Schrodinger. Results: From the molecular docking and MM/PBSA results compound Eriodictin exhibited the highest binding energy when complexed with nucleocapsid N protein (6M3M) (-6.8 kcal/mol, - 82.46 kJ/mol), bound SARS-CoV-2-hACE2 complex (6M0J) (-7.4 kcal/mol, -71.10 kJ/mol) and Mpro (6XR3) (-8.6 kcal/mol, -140.21 kJ/mol). Van der Waal and electrostatic energy terms highly favored total free energy binding. Conclusion: The compounds Eriodictin, Vitexin, Cycloart-3, 24, 27-triol, Agigenin, Mangiferin, Mangiferolic acid, Schaftoside, 27-Hydroxymangiferonic acid, Quercetin, Azadirachtol, Cubebin, Isomangiferin, Isoquercitrin, Malicarpin, Orientin and procyanidin dimer exhibited satisfactory binding energy values when compared with standard molecules. The further iterative optimization of high-ranked compounds following validation by in vitro and in vivo techniques assists in discovering therapeutic anti-SARS-CoV-2 molecules.

Publisher

Bentham Science Publishers Ltd.

Subject

Drug Discovery,Molecular Medicine,General Medicine

Reference40 articles.

1. Sekhar A.C.; Census of India, Monograph Series, Ugadi, Part VIIB, Monograph no4 1961

2. Jagannathan M.; South Indian Hindu festivals and traditions 2005

3. Chandra S.; Jain A.K.; Foundations of ethnobotany: 21st century perspective 2017

4. Shah K.A.; Patel M.B.; Patel R.J.; Parmar P.K.; Mangifera indica (mango). Pharmacogn Rev 2010,4(7),42-48

5. Ediriweera M.K.; Tennekoon K.H.; Samarakoon S.R.; A review on ethnopharmacological applications, pharmacological activities, and bioactive compounds of Mangifera indica (Mango). Evid Based Complement Alternat Med 2017,2017,1-24

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