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Unveiling Wolbachia transcriptomic signature in the arboviral vector Aedes aegypti
Sebastián Mejías1,2, Natalia E Jiménez2,3,4, Carlos Conca1,5
1Center for Biotechnology and Bioengineering (CeBiB), University of Chile, Santiago, Santiago, Chile.
Introduction:
The mosquito Aedes aegypti is the main vector of arboviral diseases such as dengue and imposes a global health burden. A promising control strategy is to infect A. aegypti populations with Wolbachia, a genus of intracellular bacteria capable of blocking arboviral infections. Enhancing and preserving the efficacy of this method will depend on a solid mechanistic knowledge of the A. aegypti-Wolbachia symbiosis. By identifying differences between Wolbachia-infected and uninfected A. aegypti, previous transcriptomic studies proposed a wide range of symbiotic interactions, but a systematic identification of consistent effects across datasets is still missing.
Methods:
To identify A. aegypti genes and functions consistently affected by Wolbachia, we performed differential expression and functional enrichment analysis on published transcriptomic datasets, followed by a meta-analysis of the obtained p-values using the maxP method. Six datasets were retrieved from Gene Expression Omnibus, Sequence Read Archive and ArrayExpress (last searched in July 2024, considering lack of replication as the exclusion criteria). After discarding one dataset from wAlbB-infected cell line due to poor mapping to the A. aegypti genome, the data comprised adult female A. aegypti heads, muscles, carcasses, midguts and bodies, and Wolbachia strains wMel and wMelPop.
Results And Discussion:
Meta-analysis revealed 10 and 21 consistently down- and upregulated host genes, some of which have escaped the focus of previous research, including the consistently downregulated exonuclease AAEL009650 which has a pro-dengue virus homolog in Drosophila. At the function level, we found consistent upregulation of electron transport chain (ETC), carbohydrate transport and serine-type peptidase activity and inhibition, and downregulation of DNA replication. ETC upregulation suggests an alternative mechanism for Wolbachia's induction of antiviral oxidative stress, previously attributed to dual- and NADPH-oxidases which here showed downregulation or no regulation. Through analysis of previously published datasets, this work identifies promising molecular and functional targets for future studies aimed at elucidating the most fundamental mechanisms of the A. aegypti-Wolbachia symbiosis.
Insights
This study identified key genes and functions consistently affected by Wolbachia infection in Aedes aegypti mosquitoes. Findings reveal new targets for understanding mosquito-Wolbachia symbiosis and enhancing arboviral disease control.
Area of Science:
- Vector biology and entomology
- Microbial symbiosis
- Genomics and transcriptomics
Background:
- Aedes aegypti mosquitoes transmit arboviruses like dengue, posing a global health threat.
- Wolbachia bacteria can block arboviral infections in Aedes aegypti, offering a control strategy.
- Understanding the Aedes aegypti-Wolbachia symbiosis requires identifying consistently affected host genes and functions.
Purpose of the Study:
- To systematically identify Aedes aegypti genes and functions consistently impacted by Wolbachia infection.
- To provide a mechanistic basis for the Aedes aegypti-Wolbachia symbiosis.
- To identify novel molecular targets for improving Wolbachia-based arboviral disease control.
Main Methods:
- Performed meta-analysis of published transcriptomic datasets from Wolbachia-infected and uninfected Aedes aegypti.
- Utilized differential expression and functional enrichment analysis, followed by maxP method for p-value meta-analysis.
- Included datasets from adult female Aedes aegypti tissues (heads, muscles, carcasses, midguts, bodies) and Wolbachia strains wMel and wMelPop.
Main Results:
- Identified 10 consistently downregulated and 21 consistently upregulated host genes, including the novel downregulated exonuclease AAEL009650.
- Revealed consistent upregulation of electron transport chain (ETC), carbohydrate transport, and serine-type peptidase activity.
- Observed consistent downregulation of DNA replication and no significant regulation or downregulation of dual- and NADPH-oxidases.
Conclusions:
- The study pinpoints specific host genes and functions crucial to the Aedes aegypti-Wolbachia symbiosis.
- Upregulation of ETC suggests an alternative mechanism for Wolbachia-induced antiviral oxidative stress.
- Identified targets provide a foundation for future research into fundamental symbiotic mechanisms and enhanced disease control strategies.
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