Multi-omics analysis of antiviral interactions of Elizabethkingia anophelis and Zika virus

The microbial communities residing in the mosquito midgut play a key role in determining the outcome of mosquito pathogen infection. Elizabethkingia anophelis , originally isolated from the midgut of Anopheles gambiae possess a broad-spectrum antiviral phenotype, yet a gap in knowledge regarding the...

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Veröffentlicht in:Scientific reports 2024-08, Vol.14 (1), p.18470-14, Article 18470
Hauptverfasser: Omme, S., Wang, J., Sifuna, M., Rodriguez, J., Owusu, N. R., Goli, M., Jiang, P., Waziha, P., Nwaiwu, J., Brelsfoard, C. L., Vigneron, A., Ciota, A. T., Kramer, L. D., Mechref, Y., Onyangos, M. G.
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Sprache:eng
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Zusammenfassung:The microbial communities residing in the mosquito midgut play a key role in determining the outcome of mosquito pathogen infection. Elizabethkingia anophelis , originally isolated from the midgut of Anopheles gambiae possess a broad-spectrum antiviral phenotype, yet a gap in knowledge regarding the mechanistic basis of its interaction with viruses exists. The current study aims to identify pathways and genetic factors linked to E. anophelis antiviral activity. The understanding of E. anophelis antiviral mechanism could lead to novel transmission barrier tools to prevent arboviral outbreaks. We utilized a non-targeted multi-omics approach, analyzing extracellular lipids, proteins, metabolites of culture supernatants coinfected with ZIKV and E. anophelis . We observed a significant decrease in arginine and phenylalanine levels, metabolites that are essential for viral replication and progression of viral infection. This study provides insights into the molecular basis of E. anophelis antiviral phenotype. The findings lay a foundation for in-depth mechanistic studies.
ISSN:2045-2322
2045-2322
DOI:10.1038/s41598-024-68898-3