Microarray analyses of mouse responses to infection by Neospora caninum identifies disease associated cellular

John Ellis1, Duncan Sinclair, David Morrison

  • 1Department of Medical and Molecular Biosciences, University of Technology, Sydney, NSW, Australia. john.ellis@uts.edu.au

Insights

Investigating host responses to Neospora caninum infection in mice using microarray technology revealed distinct transcriptional profiles. These findings offer new insights into protective immunity and pathogenesis for neosporosis.

Area of Science:

  • Immunology
  • Parasitology
  • Genomics

Background:

  • Neospora caninum causes neosporosis, leading to abortion and fetal loss in cattle.
  • Understanding host immunity is crucial for developing effective vaccines and treatments.
  • Microarray technology offers a powerful tool to explore host responses at a molecular level.

Purpose of the Study:

  • To investigate protective host responses in mice spleen 6 hours post-infection with a live Neospora caninum vaccine.
  • To identify key genes and pathways involved in the host's immune response to N. caninum.
  • To compare transcriptional responses between different mouse strains (Qs and BALB/c).

Main Methods:

  • Microarray analysis of splenic gene expression in mice infected with N. caninum.
  • Statistical analysis using Significance of Microarrays (SAM) and ANOVA.
  • Gene ontology enrichment analysis using hypergeometric tests to identify affected biological pathways.

Main Results:

  • Significant differences in transcriptional responses were observed between Qs and BALB/c mice infected with N. caninum.
  • The Jak-STAT signaling pathway and IFN-γ-regulated genes, including GTPases, were significantly modulated.
  • Gene ontology analysis linked identified molecules to pathways involved in cancer, Parkinson's, Alzheimer's, cell cycle, and mitochondrial function.

Conclusions:

  • Host transcriptional responses to N. caninum infection vary between mouse strains.
  • IFN-γ plays a significant role in the mouse immune response to N. caninum.
  • The identified molecular pathways provide novel targets for understanding neosporosis pathogenesis and developing protective immunity.