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Bioinformatic investigation of Nipah virus surface protein mutations: Molecular docking with Ephrin B2 receptor, molecular dynamics simulation, and structural impact analysis

dc.contributor.authorAktas, Emre
dc.contributor.authorSaygili, Irem
dc.contributor.authorKahveci, Elif
dc.contributor.authorTekbiyik, Zeynep
dc.contributor.authorOzgenturk, Nehir Ozdemir
dc.date.accessioned2026-06-27T14:53:18Z
dc.date.issued2023
dc.description.abstractThe SARS-CoV-2 outbreak resulted in significant challenges and loss of life. The Nipah virus, known for its high infectivity and severity, was designated an emergency concern by the World Health Organization. To understand its mutations, the Nipah virus proteins were analyzed extensively, with a focus on the essential G and F proteins responsible for viral entry into host cells. Our bioinformatics analysis unveiled multiple mutations, including simultaneous mutations within a single sequence. Notably, the G273S mutation in the F protein was identified as a potential cause of structural damage, which carries significant implications for vaccine development. Comparing the docking scores of G and F proteins with the Ephrin B2 receptor, it was found that the Y228H mutation in the G protein and the D252G mutation in the F protein likely affect virus entry into host cells. Moreover, our investigation into stability and deformability highlighted the impact of the Y228H mutation in the G protein complex. Molecular dynamics simulations revealed increased flexibility and conformational changes in the G protein complex with the Y228H mutation compared with the known complex. Furthermore, evaluating the root mean square deviation variation demonstrated greater dynamic behavior in the G protein complex and the Ephrin B2 receptor complex. This comprehensive study provides valuable insights into Nipah virus mutations, their significance for vaccine development, and the importance of understanding protein complex behavior in drug discovery. The identified mutations, especially G273S and Y228H, hold crucial implications for future research and potential interventions against the Nipah virus.en
dc.description.sponsorshipNot applicable. This study received no funding.
dc.description.urihttps://doi.org/10.1111/1348-0421.13098
dc.identifier.doi10.1111/1348-0421.13098
dc.identifier.eissn1348-0421
dc.identifier.endpage513
dc.identifier.issn0385-5600
dc.identifier.issue12
dc.identifier.pubmed37812043
dc.identifier.startpage501
dc.identifier.urihttps://hdl.handle.net/20.500.14981/65846
dc.identifier.volume67
dc.identifier.wos001081089400001
dc.language.isoeng
dc.publisherWILEY
dc.relation.ispartofMICROBIOLOGY AND IMMUNOLOGY
dc.rightsopenAccess
dc.subjectbioinformatics analysis
dc.subjectNipah virus mutations
dc.subjectNipah virus' proteins
dc.subjectvaccine development
dc.subjectDRUG DISCOVERY
dc.subjectBINDING
dc.subjectPREDICTION
dc.subjectVACCINES
dc.subjectDESIGN
dc.subjectImmunology
dc.subjectMicrobiology
dc.titleBioinformatic investigation of Nipah virus surface protein mutations: Molecular docking with Ephrin B2 receptor, molecular dynamics simulation, and structural impact analysis
dc.typeArticle
dspace.entity.typePublication
local.import.sourceWOS

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