Chronic parasitization by Nosema microsporidia causes global expression changes in core nutritional, metabolic and

Holly L Holt1, Katherine A Aronstein, Christina M Grozinger

  • 1Department of Entomology, Center for Pollinator Research, Center for Chemical Ecology, Huck Institutes of the Life Sciences, Pennsylvania State University, University Park, USA. hlh192@psu.edu.

BMC Genomics
|November 20, 2013
PubMed
Abstract

Insights

Honey bee parasites Nosema apis and Nosema ceranae disrupt midgut development and alter metabolic pathways. These changes in nutritional and metabolic processes precede behavioral maturation and immune responses in infected bees.

Area of Science:

  • * Entomology
  • * Molecular Biology
  • * Animal Physiology

Background:

  • * Chronic infections impact honey bee (Apis mellifera) physiology, behavior, and longevity.
  • * Nosema apis and Nosema ceranae are microsporidian parasites infecting the honey bee digestive tract, linked to colony losses.
  • * Nosema infection damages midgut tissue, incurs energetic costs, and accelerates behavioral maturation in worker bees.

Purpose of the Study:

  • * To characterize global gene expression patterns in honey bee midgut and fat body tissues in response to Nosema infection.
  • * To investigate the molecular pathways affected by Nosema infection, including nutritional, metabolic, and immune responses.
  • * To understand how Nosema infection influences behavioral maturation in worker honey bees.

Main Methods:

  • * Microarray analysis of gene expression in adult worker honey bee midgut and fat body tissues.
  • * Experimental infection of honey bees with Nosema apis and Nosema ceranae at different ages.
  • * Comparative analysis of gene expression patterns in infected versus control bees.

Main Results:

  • * Nosema apis infection disrupts midgut development in young workers and causes metabolic changes in the fat body.
  • * Nosema co-infection alters conserved nutritional, metabolic, and hormonal pathways, including the insulin signaling pathway.
  • * Nosema infection primarily affects acute immune response genes, not canonical immune genes, and metabolic changes precede behavioral and immune alterations.

Conclusions:

  • * Genome-wide expression studies help elucidate direct and indirect effects of chronic Nosema infection in honey bees.
  • * Molecular pathways regulating nutritional, metabolic, and behavioral changes due to Nosema infection are identified.
  • * Understanding these pathways is crucial for addressing honey bee health and mitigating colony losses.