Dynamics of repeat-associated plasticity in the aaap gene family in Anaplasma marginale

Heather M Fallquist1, Jin Tao2, Xiaoya Cheng1

  • 1Program in Genomics, Department of Veterinary Microbiology & Pathology, Washington State University, Pullman, WA 99164-7040, USA.

Gene
|September 17, 2021
PubMed

Insights

Anaplasma marginale's appendage-associated protein (aaap) gene locus shows significant plasticity, with structural changes and expression shifts occurring between cattle and tick hosts, suggesting a role in strain diversification.

Area of Science:

  • Molecular Biology
  • Parasitology
  • Veterinary Entomology

Background:

  • Anaplasmosis, a significant cattle disease, is caused by Anaplasma marginale, an intracellular parasite.
  • A. marginale forms unique appendages on the parasitophorous vacuole membrane within erythrocytes.
  • The Anaplasma appendage associated protein (aaap) gene family is located in a plastic genomic region.

Purpose of the Study:

  • To investigate the plasticity and structural variations of the aaap gene locus in A. marginale.
  • To understand the role of aaap locus variations in different host environments (cattle vs. ticks).
  • To explore the potential impact of aaap locus dynamics on strain diversification.

Main Methods:

  • Cloning, sequencing, and alignment of different aaap locus versions from various A. marginale strains.
  • Investigation of aaap locus structural variation in bovine erythrocytes and tick cells.
  • Analysis of Aaap protein expression profiles in blood and tick samples.

Main Results:

  • Repeat sequences within and between genes facilitate aaap locus rearrangement.
  • Reduced aaap locus subpopulations were observed in ticks compared to erythrocytes.
  • Alternative locus structures re-emerged upon transfer from ticks to cattle, with host-specific Aaap protein expression shifts.

Conclusions:

  • The aaap locus exhibits significant structural plasticity driven by repeat sequences.
  • Host environments (cattle and ticks) induce changes in aaap locus subpopulations and protein expression.
  • These dynamic changes suggest the aaap locus plays a crucial role in A. marginale strain diversification.