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Marine-Derived Peptides from Phaeodactylum tricornutum as Potential SARS-CoV-2 Mpro Inhibitors: An In Silico Approach
David Mauricio Cañedo-Figueroa1,2, Marco Antonio Valdez-Flores1, Claudia Desireé Norzagaray-Valenzuela3
1Faculty of Medicine, Autonomous University of Sinaloa, Culiacán 80246, Mexico.
Abstract:
The ongoing threat of viral pandemics such as COVID-19 highlights the urgent need for novel antiviral therapeutics targeting conserved viral proteins. In this study, peptides of 10-30 kDa derived from the marine diatom Phaeodactylum tricornutum were identified as potential inhibitors of SARS-CoV-2 main protease (Mpro), a key enzyme in viral replication. Peptides less than 60 amino acids in length were retrieved from the UniProt database and aligned with reference antiviral sequences using the Biopython pairwise2 algorithm. Six candidates were selected for structural modeling using AlphaFold2 and Swiss-Model, followed by molecular docking using ClusPro2. LigPlot+ was used to assess molecular interactions, while NetMHCpan 4.1 and AVPpred evaluated immunogenicity and antiviral potential, respectively. Molecular dynamics simulations over 100 ns were conducted using OpenMM. These peptides demonstrated stable binding interactions with key catalytic residues of Mpro. Specifically, peptide A0A8J9SA87 interacted with Cys145 and Glu166, while peptide A0A8J9SDW0 exhibited interactions with His41 and Phe140, both of which are known to be essential for Mpro inhibition. Although peptide A0A8J9X3P8 also interacted with catalytic residues, it exhibited greater structural fluctuations during molecular dynamics simulations and achieved lower AVPpred scores, suggesting lower overall antiviral potential. Therefore, A0A8J9SA87 and A0A8J9SDW0 were identified as the most promising candidates. Molecular dynamics simulations further supported the high structural stability of these peptide-Mpro complexes over a 100 ns timescale, reinforcing their potential as effective inhibitors. These findings support P. tricornutum as a valuable source of antiviral peptides and demonstrate the feasibility of in silico pipelines for identifying therapeutic candidates against SARS-CoV-2.
Insights
Marine diatom peptides show promise as novel antiviral drugs against SARS-CoV-2. Computational methods identified two peptides, A0A8J9SA87 and A0A8J9SDW0, that stably inhibit the virus's main protease, offering new therapeutic avenues.
Area of Science:
- Biotechnology
- Marine Biology
- Computational Biology
Background:
- The COVID-19 pandemic necessitates novel antiviral therapies targeting conserved viral proteins.
- Marine organisms, like diatoms, are underexplored sources of bioactive compounds with therapeutic potential.
Purpose of the Study:
- To identify and characterize antiviral peptides from the marine diatom *Phaeodactylum tricornutum* with inhibitory activity against SARS-CoV-2 main protease (Mpro).
- To evaluate the binding stability and potential efficacy of these peptides using computational methods.
Main Methods:
- Peptide retrieval from UniProt, sequence alignment, structural modeling (AlphaFold2, Swiss-Model), molecular docking (ClusPro2), interaction analysis (LigPlot+), immunogenicity/antiviral prediction (NetMHCpan 4.1, AVPpred), and molecular dynamics simulations (OpenMM).
Main Results:
- Six peptides were modeled, with A0A8J9SA87 and A0A8J9SDW0 showing stable interactions with critical Mpro catalytic residues (Cys145, Glu166 for A0A8J9SA87; His41, Phe140 for A0A8J9SDW0).
- Peptide A0A8J9X3P8 exhibited less stability and lower predicted antiviral potential.
- 100 ns molecular dynamics simulations confirmed the stable binding of A0A8J9SA87 and A0A8J9SDW0 to Mpro.
Conclusions:
- Peptides A0A8J9SA87 and A0A8J9SDW0 from *P. tricornutum* are promising candidates for SARS-CoV-2 antiviral therapeutics.
- *In silico* pipelines are effective for discovering antiviral peptides from marine sources.
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