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: X
|February 27, 2020
PubMed

Insights

Anaplasma marginale exhibits genomic plasticity in its aaap locus, with repeat sequences driving rearrangements. This locus structure and protein expression vary between hosts, suggesting a role in strain diversification for this cattle pathogen.

Area of Science:

  • Molecular Biology
  • Genomics
  • Parasitology

Background:

  • Anaplasmosis, caused by *Anaplasma marginale*, is a significant tick-transmitted cattle disease.
  • The pathogen forms appendages on the parasitophorous vacuole, associated with specific gene families.
  • The *Anaplasma* appendage associated protein (*aaap*) gene family, including *aaap* and *alps* genes, is located in a plastic genomic region.

Purpose of the Study:

  • To investigate the plasticity of the *aaap* locus in *Anaplasma marginale*.
  • To understand how locus structure and gene expression vary across different hosts and environments.
  • To explore the potential role of the *aaap* locus in pathogen strain diversification and pathogenesis.

Main Methods:

  • Cloning, sequencing, and alignment of different *aaap* locus versions from various strains.
  • Analysis of locus structural variation during infection of bovine erythrocytes and tick cells.
  • Comparison of Aaap protein expression profiles between blood and tick samples.

Main Results:

  • Repeat sequences within and between *aaap* genes facilitate locus rearrangement.
  • The *aaap* locus exhibits reduced subpopulation diversity in ticks compared to erythrocytes.
  • Alternative locus structures re-emerge after transfer from ticks to cattle, with host-specific protein expression shifts.

Conclusions:

  • The *aaap* locus demonstrates significant structural plasticity driven by repeat sequences.
  • Host environments (bovine vs. tick) induce changes in *aaap* locus subpopulations and protein expression.
  • These variations suggest the *aaap* locus plays a crucial role in *Anaplasma marginale* strain diversification.

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