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Published on: October 6, 2017
Dynamic proteomic analysis of Aedes aegypti Aag-2 cells infected with Mayaro virus
Anna Fernanda Vasconcellos1,2, Samuel Coelho Mandacaru1, Athos Silva de Oliveira2
1Laboratory of Protein Chemistry and Biochemistry, Department of Cell Biology, Institute of Biology, University of Brasilia, Brasilia, DF, 70910-900, Brazil.
Background:
Mayaro virus (MAYV) is responsible for a mosquito-borne tropical disease with clinical symptoms similar to dengue or chikungunya virus fevers. In addition to the recent territorial expansion of MAYV, this virus may be responsible for an increasing number of outbreaks. Currently, no vaccine is available. Aedes aegypti is promiscuous in its viral transmission and thus an interesting model to understand MAYV-vector interactions. While the life-cycle of MAYV is known, the mechanisms by which this arbovirus affects mosquito host cells are not clearly understood.
Methods:
After defining the best conditions for cell culture harvesting using the highest virus titer, Ae. aegypti Aag-2 cells were infected with a Brazilian MAYV isolate at a MOI of 1 in order to perform a comparative proteomic analysis of MAYV-infected Aag-2 cells by using a label-free semi-quantitative bottom-up proteomic analysis. Time-course analyses were performed at 12 and 48 h post-infection (hpi). After spectrum alignment between the triplicates of each time point and changes of the relative abundance level calculation, the identified proteins were annotated and using Gene Ontology database and protein pathways were annotated using the Kyoto Encyclopedia of Genes and Genomes.
Results:
After three reproducible biological replicates, the total proteome analysis allowed for the identification of 5330 peptides and the mapping of 459, 376 and 251 protein groups, at time 0, 12 hpi and 48 hpi, respectively. A total of 161 mosquito proteins were found to be differentially abundant during the time-course, mostly related to host cell processes, including redox metabolism, translation, energy metabolism, and host cell defense. MAYV infection also increased host protein expression implicated in viral replication.
Conclusions:
To our knowledge, this first proteomic time-course analysis of MAYV-infected mosquito cells sheds light on the molecular basis of the viral infection process and host cell response during the first 48 hpi. Our data highlight several mosquito proteins modulated by the virus, revealing that MAYV manipulates mosquito cell metabolism for its propagation.
Insights
Mayaro virus (MAYV) manipulates mosquito cell metabolism for its propagation. This study reveals how MAYV infection impacts host cell processes, offering insights into arbovirus-vector interactions.
Area of Science:
- * Virology
- * Molecular Biology
- * Entomology
Background:
- * Mayaro virus (MAYV) causes tropical diseases with symptoms similar to dengue and chikungunya.
- * MAYV outbreaks are increasing, with no available vaccine.
- * Understanding MAYV-vector interactions in Aedes aegypti is crucial.
Purpose of the Study:
- * To investigate the molecular mechanisms of MAYV infection in Aedes aegypti cells.
- * To perform a time-course proteomic analysis of MAYV-infected mosquito cells.
- * To identify host cell proteins modulated by MAYV.
Main Methods:
- * Label-free semi-quantitative bottom-up proteomic analysis of Ae. aegypti Aag-2 cells infected with MAYV.
- * Time-course analysis at 12 and 48 hours post-infection (hpi).
- * Protein and pathway annotation using Gene Ontology and KEGG databases.
Main Results:
- * Identified 459, 376, and 251 protein groups at 0, 12, and 48 hpi, respectively.
- * 161 differentially abundant mosquito proteins were identified, mainly involved in host cell processes like metabolism and defense.
- * MAYV infection upregulated host proteins associated with viral replication.
Conclusions:
- * This is the first proteomic time-course study of MAYV-infected mosquito cells.
- * The study elucidates the molecular basis of MAYV infection and host response within the first 48 hpi.
- * MAYV actively manipulates mosquito cell metabolism to facilitate its own propagation.

