DsRNA-mediated targeting of ribosomal transcripts RPS6 and RPL26 induces long-lasting and significant reductions in

A S Estep1, N D Sanscrainte2, J J Becnel2

  • 1Navy Entomology Center of Excellence, Testing & Evaluation Department, CMAVE Detachment, Naval Air Station, Jacksonville, Jacksonville, FL 32211, United States; Center for Medical, Agricultural, and Veterinary Entomology, Agricultural Research Service, United States Department of Agriculture, 1700 SW 23rd Drive, Gainesville, FL 32608, United States.

Insights

Targeting ribosomal protein transcripts in mosquitoes significantly reduced fecundity and oocyte development, but efficient delivery remains a challenge for vector control.

Area of Science:

  • Molecular Biology
  • Entomology
  • Genetics

Background:

  • Ribosomal transcripts are essential for protein synthesis and cellular functions.
  • Previous studies show ribosomal transcript targeting is effective against mites and ticks.
  • The impact of ribosomal transcript knockdown on mosquito reproduction is not well understood.

Purpose of the Study:

  • To investigate the effects of targeting four ribosomal protein (RP) transcripts in mosquitoes.
  • To assess the impact of gene knockdown on mosquito fecundity and oocyte development.
  • To evaluate potential vector control strategies based on ribosomal transcript targeting.

Main Methods:

  • Microinjection of double-stranded RNA (dsRNA) targeting RPS6, RPL26, RPL1, and RPS2 transcripts in mosquitoes.
  • Assessment of gene expression levels, mortality, and fecundity post-injection and blood feeding.
  • Examination of oocyte provisioning defects and dose-response effects of dsRPS6.
  • Evaluation of different delivery methods (sugar meal, siRNA) and trigger specificity.

Main Results:

  • dsRNA targeting RPS6 and RPL26 significantly reduced gene expression and reproductive output (>90% reduction in fecundity).
  • Reduced fecundity persisted through a second oviposition cycle for dsRPS6 and dsRPL26 cohorts.
  • Knockdown of RPS6 and RPL26 led to defects in oocyte provisioning.
  • dsRPS6 demonstrated strong knockdown in abdominal tissues and ovaries, with significant fecundity reduction at >50ng.

Conclusions:

  • Targeting specific ribosomal protein transcripts, particularly RPS6 and RPL26, can effectively impair mosquito reproduction.
  • While effective triggers can be developed, inefficient delivery methods are the primary obstacle for their use as a vector control strategy.
  • Further research into optimized delivery systems is crucial for translating these findings into practical mosquito control solutions.