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Published on: November 30, 2022
Evolution of antigen variation in the tick-borne pathogen Anaplasma phagocytophilum
Daniel Rejmanek1, Patrick Foley, Anthony Barbet
1Department of Medicine and Epidemiology, School of Veterinary Medicine, University of California, Davis, CA, USA. drejmanek@ucdavis.edu
Abstract:
Anaplasma phagocytophilum is an obligately intracellular tick-transmitted bacterial pathogen of humans and other animals. During the course of infection, A. phagocytophilum utilizes gene conversion to shuffle ∼100 functional pseudogenes into a single expression cassette of the msp2(p44) gene, which codes for the major surface antigen and major surface protein 2 (MSP2). The role and extent of msp2(p44) recombination, particularly in hosts that only experience acute infections, is not clear. In the present study, we explored patterns of recombination and expression of the msp2(p44) gene of A. phagocytophilum in a serially infected mouse model. Even though the bacterium was passed rapidly among mice, minimizing the opportunities for the host to develop adaptive immunity, we detected the emergence of 34 unique msp2(p44) expression cassette variants. The expression of msp2(p44) pseudogenes did not follow a consistent pattern among different groups of mice, although some pseudogenes were expressed more frequently than others. In addition, among 263 expressed pseudogenes, 3 mosaic sequences each consisting of 2 different pseudogenes were identified. Population genetic analysis showed that genetic diversity and subpopulation differentiation tended to increase over time until stationarity was reached but that the variance that was observed in allele (expressed pseudogene) frequency could occur by drift alone only if a high variance in bacterial reproduction could be assumed. These findings suggest that evolutionary forces influencing antigen variation in A. phagocytophilum may comprise random genetic drift as well as some innate but apparently nonpurifying selection prior to the strong frequency-dependent selection that occurs cyclically after hosts develop strong adaptive immunity.
Insights
Anaplasma phagocytophilum shuffles pseudogenes in the msp2(p44) gene, creating variants. Genetic drift and non-purifying selection may drive this antigen variation before adaptive immunity develops.
Area of Science:
- Microbiology
- Genetics
- Immunology
Background:
- Anaplasma phagocytophilum is a tick-borne pathogen causing infections in humans and animals.
- The msp2(p44) gene, encoding a major surface protein, undergoes gene conversion involving numerous pseudogenes.
- The role of msp2(p44) recombination, especially during acute infections, remains unclear.
Purpose of the Study:
- To investigate the patterns of recombination and expression of the msp2(p44) gene in Anaplasma phagocytophilum.
- To analyze antigen variation in a serial mouse infection model, minimizing host adaptive immunity.
Main Methods:
- Serial infection of mice with Anaplasma phagocytophilum.
- Analysis of msp2(p44) gene recombination and expression.
- Population genetic analysis of bacterial populations.
Main Results:
- 34 unique msp2(p44) expression cassette variants emerged despite rapid passage.
- Expression patterns of pseudogenes varied, with some showing higher frequency.
- Three mosaic sequences, each combining two pseudogenes, were identified among expressed sequences.
- Population genetic analysis indicated increasing diversity and differentiation over time, potentially influenced by genetic drift and non-purifying selection.
Conclusions:
- Anaplasma phagocytophilum exhibits significant msp2(p44) gene recombination and variant expression even before strong adaptive immunity develops.
- Antigenic variation in this pathogen may be driven by a combination of genetic drift and innate selection.
- These evolutionary forces shape pathogen diversity prior to the cyclical, frequency-dependent selection associated with host adaptive immunity.
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