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Quantifying Fitness Costs in Transgenic Aedes aegypti Mosquitoes
Published on: September 15, 2023
Genome-Wide Transcriptome Profiling Reveals Genes Associated with Meiotic Drive System of Aedes aegypti
Dongyoung Shin1,2, Susanta K Behura3,4, David W Severson5
1Florida Medical Entomology Laboratory, Department of Entomology and Nematology, University of Florida, Vero Beach, FL 32962, USA. dshin@ufl.edu.
Abstract:
Aedes aegypti is an important mosquito vector of several arboviruses, including dengue, yellow fever, Zika, and Chikungunya, which cause significant human morbidity and mortality globally. In certain populations of this mosquito, a native meiotic drive system causes abnormal spermatogenesis that results in highly male-biased progenies from some matings. Although the basic genetics and cytogenetics of the drive mechanism were elucidated, very little is known on a transcriptome level about how the meiotic drive phenotype is expressed in individual males. To address this question, we conducted a whole-genome microarray expression study of testes from a meiotic-drive-carrying strain (T37) in comparison with testes from a non-drive-carrying strain (RED). Based on bioinformatics analyses of the microarray data, we identified 209 genes associated with the meiotic drive phenotype that were significantly differentially expressed between the two strains. K-means cluster analysis revealed nine clusters, in which genes upregulated in T37 testes were assigned to five clusters and genes downregulated in T37 testes were assigned to four clusters. Our data further revealed that genes related to protein translation, phosphorylation, and binding, as well as to G-protein-coupled receptor (GPCR) and peptidase activities, are differentially upregulated in testes from males with the meiotic drive genotype. Based on pathway analysis of these differentially expressed genes, it was observed that the glycosylphosphatidylinositol (GPI)-anchor biosynthesis pathway may play a role in the meiotic drive system. Overall, this investigation enhances our understanding of whole-genome gene expression associated with the meiotic drive system in Ae. aegypti.
Insights
Meiotic drive in Aedes aegypti mosquitoes causes male-biased offspring. This study identified 209 differentially expressed genes in testes, revealing potential roles for protein translation and GPI-anchor biosynthesis in this phenomenon.
Area of Science:
- Genetics
- Molecular Biology
- Entomology
Background:
- Aedes aegypti mosquitoes transmit arboviruses like dengue and Zika.
- A native meiotic drive system in some populations causes male-biased progeny.
- Transcriptome-level understanding of this meiotic drive phenotype is limited.
Purpose of the Study:
- To investigate whole-genome gene expression in the testes of Aedes aegypti males with a meiotic drive system.
- To identify genes and pathways associated with the meiotic drive phenotype at the transcriptome level.
Main Methods:
- Whole-genome microarray expression study comparing testes from a meiotic-drive-carrying strain (T37) and a non-drive-carrying strain (RED).
- Bioinformatics analyses, including K-means cluster analysis and pathway analysis, were performed on the microarray data.
Main Results:
- Identified 209 significantly differentially expressed genes between the two strains associated with the meiotic drive phenotype.
- Genes related to protein translation, phosphorylation, binding, G-protein-coupled receptor (GPCR) activity, and peptidase activity were upregulated in the drive strain.
- Pathway analysis suggested a potential role for the glycosylphosphatidylinositol (GPI)-anchor biosynthesis pathway.
Conclusions:
- This study provides a comprehensive view of whole-genome gene expression linked to the meiotic drive system in Aedes aegypti.
- The findings enhance understanding of the molecular mechanisms underlying abnormal spermatogenesis and male-biased sex ratios in this mosquito vector.
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