PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
April 30, 2026The Indian Journal of Medical Research0 citationsOpen Access

E-protein variability in Zika virus strains: A possible new O-glycosylation site and its implications

View Full Paper
LKLokesh KoriACAnshuman ChandraLMLabanya Mukhopadhyay

Key Points

  • To investigate genomic variation in Zika virus E-proteins and their implications for virus entry.
  • Compared genomic sequences from eleven Zika virus strains using multiple sequence alignments.
  • Performed phylogenetic analysis to identify Zika virus clades and strain relationships.
  • Generated Zika virus E-protein structures with mutations using AlphaFold and molecular dynamic simulations.
  • Identified two major Zika virus clades with the Senegal strain as the ancestral lineage.
  • Found a significant mutation at residue 120 of the E-protein (Alanine to Threonine) in the Senegal strain.
  • Observed potential implications of the mutation for post-translational O-glycosylation affecting therapy efficacy.

Abstract

Background and objectives Zika virus (ZIKV) is a flavivirus transmitted by the bite of infected Aedes mosquito. In 2015-16, Brazil reported cases of ZIKV virus infection followed by Guillain-Barre syndrome and congenital birth defects. India has reported ZIKV virus infections sporadically since 2016, without adverse events. This prompted us to conduct this in-silico investigation and identify reasons for this variation. The objective was to study ZIKV envelope protein (E-protein) to identify possible mutations and their potential role in virus entry into the host cell. Methods Using multiple sequence alignments, we compared the genomic sequences from eleven ZIKV strains with maximum genomic data available in the NCBI database, followed by phylogenetic analysis. ZIKV E-protein structures with mutations were generated using AlphaFold and used for molecular dynamic simulation, followed by protein 3D structure and residues interaction analysis. Results We identified 2 major ZIKV clades - ZIKV Senegal strain (African lineage, Accession No. MF510857, 1984) is an ancestral strain representing one clade, while the remaining strains belong to the second major clade, with the Indian strain being closest to the Senegal strain genomically. The Senegal strain also has a significant mutation at residue no. 120 of the E-protein (Alanine to Threonine), which is absent in other strains. Interpretation and conclusions We found a mutation in the ZIKV Senegal strain at residue no. 120 (Alanine Threonine), here Threonine is interacting with Serine residue at position 64. This interaction is known for post-translational O-glycosylation of E-protein, which may reduce the efficacy of envelope-based therapies. To the best of our knowledge, this is the first report of a putative O-glycosylation site on the E-protein of a ZIKV strain, which is an important therapeutic target, and our finding needs further in vitro validation.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Kori et al. (2026) studied this question.

synapsesocial.com/papers/69f2a4f18c0f03fd677640eehttps://doi.org/10.25259/ijmr_2895_2025
Ask AI
Helpful
Bookmark
Share
View Full Paper

Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Isolation, identification and genomic characterization of the Asian lineage Zika virus imported to China2016 · 111 citations
  2. 2Molecular mechanisms involved in the early steps of flavivirus cell entry2010 · 151 citations
  3. 3Zika virus evolution and spread in the Americas2017 · 437 citations
  4. 4Glycosylation of viral proteins: Implication in virus–host interaction and virulence2022 · 100 citations
  5. 5Glycosylation: mechanisms, biological functions and clinical implications2024 · 465 citations