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Published on: July 30, 2014
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.
Abstract:
Anaplasmosis, the most prevalent tick-transmitted disease of cattle, is caused by the rickettsial intracellular parasite Anaplasma marginale. The pathogen replicates within a parasitophorous vacuole formed from the invagination of the erythrocyte membrane. Several strains of A. marginale form "tails" or "appendages" which are attached to, and extend out from, the cytoplasmic side of the parasitophorous vacuole. Genomic analysis of the parasite antigen distributed along the appendage led to the discovery of the aaap (Anaplasma appendage associated protein) gene family located within a highly plastic region in the genome. The aaap gene family consists of aaap and several alps (for aaap-like proteins), depending on the strain. These genes/proteins are characterized by repeat sequences. To investigate locus plasticity, different versions of the locus were cloned from the same strain as well as from different strains, sequenced and aligned to identify changes. Our findings show that repeat sequences both within and between genes facilitated rearrangement events within the locus. Structural variation of the locus in the St. Maries strain was further investigated during infection of different cellular environments, i.e., bovine erythrocytes and tick cells, with a reduction in subpopulations of the aaap locus within the tick as compared to erythrocytes. Interestingly, subpopulations bearing alternative locus structures began to arise again when the pathogen was transferred from the tick environment into a naïve calf. Additionally, the Aaap protein expression profile between blood and tick samples showed a regulatory shift, indicating a host-specific response. Alignment of the protein sequences from different species of Anaplasma reveals six similar repeating motifs that appear to be unique to a few species of Anaplasma. The role the aaap locus may play in the pathogenesis of the bovine host or in tick infection/transmission remains unknown; however, the changes in aaap locus subpopulations, locus structure, and protein expression indicate that these genes have a role in strain diversification.
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.
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