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A Method to Assess Bacteriocin Effects on the Gut Microbiota of Mice
Published on: July 25, 2017
In Silico Analysis of Bacteriocins from Lactic Acid Bacteria Against SARS-CoV-2
Ismail Erol1, Seyfullah Enes Kotil2, Ozkan Fidan3
1Computational Biology and Molecular Simulations Laboratory, Department of Biophysics, School of Medicine, Bahcesehir University, Istanbul, Turkey. ismail.erol@med.bau.edu.tr.
Abstract:
The COVID-19 pandemic caused by a novel coronavirus (SARS-CoV-2) is a serious health concern in the twenty-first century for scientists, health workers, and all humans. The absence of specific biotherapeutics requires new strategies to prevent the spread and prophylaxis of the novel virus and its variants. The SARS-CoV-2 virus shows pathogenesis by entering the host cells via spike protein and Angiotensin-Converting Enzyme 2 receptor protein. Thus, the present study aims to compute the binding energies between a wide range of bacteriocins with receptor-binding domain (RBD) on spike proteins of wild type (WT) and beta variant (lineage B.1.351). Molecular docking analyses were performed to evaluate binding energies. Upon achieving the best bio-peptides with the highest docking scores, further molecular dynamics (MD) simulations were performed to validate the structure and interaction stability. Protein-protein docking of the chosen 22 biopeptides with WT-RBD showed docking scores lower than -7.9 kcal/mol. Pediocin PA-1 and salivaricin P showed the lowest (best) docking scores of - 12 kcal/mol. Pediocin PA-1, salivaricin B, and salivaricin P showed a remarkable increase in the double mutant's predicted binding affinity with -13.8 kcal/mol, -13.0 kcal/mol, and -12.5 kcal/mol, respectively. Also, a better predicted binding affinity of pediocin PA-1 and salivaricin B against triple mutant was observed compared to the WT. Thus, pediocin PA-1 binds stronger to mutants of the RBD, particularly to double and triple mutants. Salivaricin B showed a better predicted binding affinity towards triple mutant compared to WT, showing that it might be another bacteriocin with potential activity against the SARS-CoV-2 beta variant. Overall, pediocin PA-1, salivaricin P, and salivaricin B are the most promising candidates for inhibiting SARS-CoV-2 (including lineage B.1.351) entrance into the human cells. These bacteriocins derived from lactic acid bacteria hold promising potential for paving an alternative way for treatment and prophylaxis of WT and beta variants.
Insights
Bacteriocins like pediocin PA-1 show strong binding to SARS-CoV-2 spike protein variants, offering potential for new COVID-19 treatments. These antimicrobial peptides may inhibit viral entry into human cells.
Area of Science:
- Biochemistry
- Virology
- Microbiology
Background:
- The COVID-19 pandemic, caused by SARS-CoV-2, necessitates novel therapeutic strategies due to the lack of specific biotherapeutics.
- SARS-CoV-2 pathogenesis involves its spike protein binding to the ACE2 receptor on host cells.
Purpose of the Study:
- To compute binding energies between various bacteriocins and the receptor-binding domain (RBD) of the SARS-CoV-2 spike protein (wild type and beta variant).
- To identify bacteriocins with high binding affinity for potential use in preventing viral entry.
Main Methods:
- Molecular docking analyses were employed to evaluate binding energies between bacteriocins and the SARS-CoV-2 RBD.
- Molecular dynamics (MD) simulations were conducted to validate the stability of interactions for top-scoring candidates.
Main Results:
- Pediocin PA-1 and salivaricin P exhibited the strongest binding scores (-12 kcal/mol) with the wild-type RBD.
- Pediocin PA-1, salivaricin B, and salivaricin P showed enhanced binding affinity towards double mutants (-13.8, -13.0, and -12.5 kcal/mol, respectively).
- Pediocin PA-1 demonstrated stronger binding to RBD mutants, especially double and triple mutants, while Salivaricin B showed improved affinity against the triple mutant.
Conclusions:
- Pediocin PA-1, salivaricin P, and salivaricin B are promising candidates for inhibiting SARS-CoV-2 (including the beta variant) entry into human cells.
- These bacteriocins, derived from lactic acid bacteria, offer potential alternative strategies for the treatment and prophylaxis of COVID-19.

