Molecular Docking and ADME-TOX Profiling of Moringa oleifera Constituents against SARS-CoV-2

Author:

Souza Hellen Cris Araújo1,Souza Maycon Douglas Araújo1,Sousa Cássio Silva1ORCID,Viana Edilanne Katrine Amparo1,Alves Sabrina Kelly Silva1,Marques Alex Oliveira1,Ribeiro Arthur Serejo Neves1,de Sousa do Vale Vanessa1ORCID,Islam Muhammad Torequl2ORCID,de Miranda João Antônio Leal3ORCID,da Costa Mota Marcelo1,Rocha Jefferson Almeida1ORCID

Affiliation:

1. Medicinal Chemistry and Biotechnology Research Group—QUIMEBIO, São Bernardo Science Center, Federal University of Maranhão UFMA, São Bernardo 65080-805, MA, Brazil

2. Department of Pharmacy, Bangabandhu Sheikh Mujibur Rahman Science and Technology University, Gopalganj 8100, Bangladesh

3. Department of Medicine, Senador Helvidio Nunes de Barros Center, Federal University of Piauí (UFPI), Picos 64607-670, PI, Brazil

Abstract

The SARS-CoV-2 (severe acute respiratory syndrome coronavirus 2019) etiological agent, which has a high contagiousness and is to blame for the outbreak of acute viral pneumonia, is the cause of the respiratory disease COVID-19. The use of natural products grew as an alternative treatment for various diseases due to the abundance of organic molecules with pharmacological properties. Many pharmaceutical studies have focused on investigating compounds with therapeutic potential. Therefore, this study aimed to identify potential antiviral compounds from a popular medicinal plant called Moringa oleifera Lam. against the spike, Mpro, ACE2, and RBD targets of SARS-CoV-2. For this, we use molecular docking to identify the molecules with the greatest affinity for the targets through the orientation of the ligand with the receptor in complex. For the best results, ADME-TOX predictions were performed to evaluate the pharmacokinetic properties of the compounds using the online tool pkCSM. The results demonstrate that among the 61 molecules of M. oleifera, 22 molecules showed promising inhibition results, where the compound ellagic acid showed significant molecular affinity (−9.3 kcal.mol−1) in interaction with the spike protein. These results highlight the relevance of investigating natural compounds from M. oleifera as potential antivirals against SARS-CoV-2; however, additional studies are needed to confirm the antiviral activity of the compounds.

Funder

Foundation for Scientific and Technological Research and Development of Maranhão—FAPEMA

Federal University of Maranhão

Publisher

MDPI AG

Subject

Pulmonary and Respiratory Medicine

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