Exploring the Potential Human Kinase-Viral Substrate Network of West Nile Virus
Abstract
1. Introduction
2. Methodology
2.1. Human Kinase-Specific Motif Screening
2.2. Mapping Potential Human Kinase Targets Within the WNV Proteome
2.3. Global Phosphoproteomic Landscape and Phosphorylation Dynamics in Human Cells During WNV Infection
2.4. Host Kinase Phosphosite Analysis Induced by WNV Infection
2.5. Structural Assessment of Human Protein Kinases and WNV Proteins
2.6. Molecular Dynamics Simulation
3. Results
3.1. Human Kinase-Target Motifs in WNV Proteome
3.2. Host Phosphorylation Landscape and Signaling Alterations Induced by WNV Infection
3.3. Potential Kinases Associated with Experimentally Validated Sites of WNV Proteins
3.4. Docking of Predicted Phosphorylation Sites with Potential Kinases
3.5. Interaction Analysis Between the Phosphorylation Sites in WNV and Human Kinases
3.6. Molecular Dynamics Simulation
3.6.1. RMSD
3.6.2. Protein–Protein Interactions
3.6.3. Root Mean Square Fluctuation (RMSF)
3.7. Conservation Analysis
4. Discussion
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| WNV | West Nile virus |
| PP2A | Protein phosphatase type 2A |
| prM/M | Pre-membrane/membrane |
| TLR3 | Toll-like receptor 3 |
| JAK1 | Janus kinase 1 |
| Tyk2 | Tyrosine kinase 2 |
| PI3K | Phosphatidylinositol 3-kinase |
| 4E-BP1 | 4E-binding protein 1 |
| p90RSK | 90 kDa ribosomal S6 kinase |
| ERK | Extracellular signal-regulated kinase |
| AKT | Protein kinase B |
| PAK2 | P21-activated kinase 2 |
| AMPK | AMP-activated protein kinase |
| CSKN1D | Casein kinase 1 isoform delta |
| IKBKB | Inhibitor of nuclear factor kappa-B kinase subunit beta |
| MAP2K7 | Mitogen-activated protein kinase kinase 7 |
| PRKAA1 | Protein kinase catalytic subunit alpha-1 |
| RAF1 | RAF proto-oncogene serine/threonine-protein kinase |
| ULK1 | Unc-51-like autophagy-activating kinase 1 |
| ATM | Ataxia Telangiectasia Mutated |
| EGFR | Epidermal growth factor receptor |
| PKA | Protein kinase A |
| CDK2 | Cyclin-dependent kinase 2 |
| eEF2K | Eukaryotic elongation factor 2 kinase |
| LIMK1 | LIM domain kinase 1 |
| MAPK3 | Mitogen-activated protein kinase 3 |
| MAST2 | Microtubule-associated serine/threonine kinase 2 |
| AAK1 | Adaptor-associated kinase 1 |
| CAMKK2 | Calcium/Calmodulin-dependent protein kinase kinase 2 |
| CDK1 | Cyclin-dependent kinase 1 |
| CDK3 | Cyclin-dependent kinase 3 |
| GRK2 | G protein-coupled receptor kinase 2 |
| SRPK2 | Serine-arginine protein kinase 2 |
| CDK9 | Cyclin-dependent kinase 9 |
| MAPK9 | Mitogen-activated protein kinase 9 |
| MAP2K1 | Mitogen-activated protein kinase kinase 1 |
| MAPK1 | Mitogen-activated protein kinase 1 |
| SASA | Solvent-accessible surface area |
| PKG | Protein kinase G |
| CSNK1E | Casein kinase 1 epsilon |
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| Predicted Kinase | WNV Protein | Predicted Phosphosite | Phosphoproteomic Evidence | Pathway/Biological Relevance | Docking Support |
|---|---|---|---|---|---|
| RAF1 | NS5 | S2849 | RAF1 overlap with WNV phosphoproteomic dataset | MAPK/ERK signaling | Hydrogen bond with kinase domain residue; high surface complementarity; MD support |
| PRKAA1 | NS5 | S2849 | PRKAA1 overlaps with the WNV phosphoproteomic dataset. | AMPK/autophagy pathway | Close kinase-phosphosite proximity |
| IKBKB | NS5 | S2849 | IKBKB overlap with WNV phosphoproteomic dataset | MAPK/ERK signaling | Catalytic residues positioned near phosphosite |
| CSNK1D | NS5 | S2849 | CSNK1D overlap with WNV phosphoproteomic dataset | CK1 family kinase associated with flaviviral replication processes. | Hydrogen bond with kinase domain residue; high residue burial |
| PAK2 | NS1 | S955 | PAK2 overlap with WNV phosphoproteomic dataset | Antiviral response and viral translation regulation | Close contact with kinase domain; high surface complementarity |
| MAP2K7 | NS3 | S272 | MAP2K7 overlap with WNV phosphoproteomic dataset | JNK/MAPK signaling pathway | Close phosphosite proximity; favorable interaction interface |
| ULK1 | NS5 | S150 | ULK1 overlap with WNV phosphoproteomic dataset | Autophagy initiation pathway | Hydrogen bond interaction; MD support |
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Anil, A.; Jabbar, A.A.; Shaji, V.; Ahmed, M.; Joseph, B.B.; Ajayakumar, A.M.; Modi, P.K.; Jayanandan, A.; Soman, S.; Subbannayya, Y.; et al. Exploring the Potential Human Kinase-Viral Substrate Network of West Nile Virus. Viruses 2026, 18, 825. https://doi.org/10.3390/v18080825
Anil A, Jabbar AA, Shaji V, Ahmed M, Joseph BB, Ajayakumar AM, Modi PK, Jayanandan A, Soman S, Subbannayya Y, et al. Exploring the Potential Human Kinase-Viral Substrate Network of West Nile Virus. Viruses. 2026; 18(8):825. https://doi.org/10.3390/v18080825
Chicago/Turabian StyleAnil, Akash, Ayisha A. Jabbar, Vineetha Shaji, Mukhtar Ahmed, Bristow Ben Joseph, Aromal Monipillil Ajayakumar, Prashant Kumar Modi, Abhithaj Jayanandan, Sowmya Soman, Yashwanth Subbannayya, and et al. 2026. "Exploring the Potential Human Kinase-Viral Substrate Network of West Nile Virus" Viruses 18, no. 8: 825. https://doi.org/10.3390/v18080825
APA StyleAnil, A., Jabbar, A. A., Shaji, V., Ahmed, M., Joseph, B. B., Ajayakumar, A. M., Modi, P. K., Jayanandan, A., Soman, S., Subbannayya, Y., & Raju, R. (2026). Exploring the Potential Human Kinase-Viral Substrate Network of West Nile Virus. Viruses, 18(8), 825. https://doi.org/10.3390/v18080825

