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.

Insects
|January 13, 2019
PubMed

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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