Both Coinfection and Superinfection Drive Complex Anaplasma marginale Strain Structure in a Natural Transmission
Roberta Koku1, David R Herndon2, Johannetsy Avillan3
1Department of Veterinary Microbiology and Pathology, Washington State Universitygrid.30064.31, Pullman, Washington, USA.
Abstract:
Vector-borne pathogens commonly establish multistrain infections, also called complex infections. How complex infections are established, either before or after the development of an adaptive immune response, termed coinfection or superinfection, respectively, has broad implications for the maintenance of genetic diversity, pathogen phenotype, epidemiology, and disease control strategies. Anaplasma marginale, a genetically diverse, obligate, intracellular, tick-borne bacterial pathogen of cattle, commonly establishes complex infections, particularly in regions with high transmission rates. Both coinfection and superinfection can be established experimentally; however, it is unknown how complex infections develop in a natural transmission setting. To address this question, we introduced naive animals into a herd in southern Ghana with a high infection prevalence and high transmission pressure and tracked the strain acquisition of A. marginale through time using multilocus sequence typing. As expected, the genetic diversity among strains was high, and 97% of animals in the herd harbored multiple strains. All the introduced naive animals became infected, and three to four strains were typically detected in an individual animal prior to seroconversion, while one to two new strains were detected in an individual animal following seroconversion. On average, the number of strains acquired via superinfection was 16% lower than the number acquired via coinfection. Thus, while complex infections develop via both coinfection and superinfection, coinfection predominates in this setting. These findings have broad implications for the development of control strategies in high-transmission settings.
Insights
Complex infections by Anaplasma marginale in cattle predominantly develop through coinfection, where multiple pathogen strains infect simultaneously. This finding is crucial for understanding disease dynamics and control in high-transmission environments.
Area of Science:
- Veterinary Microbiology
- Epidemiology
- Immunology
Background:
- Vector-borne pathogens frequently cause multistrain infections, known as complex infections.
- The establishment of complex infections (coinfection or superinfection) impacts pathogen diversity, epidemiology, and control.
- Anaplasma marginale, a tick-borne bacterium, commonly establishes complex infections in cattle, especially in high-transmission areas.
Purpose of the Study:
- To investigate the natural development of Anaplasma marginale complex infections in cattle under high transmission pressure.
- To differentiate between coinfection and superinfection dynamics in a real-world setting.
- To understand how adaptive immunity influences strain acquisition.
Main Methods:
- Multilocus sequence typing (MLST) was used to track Anaplasma marginale strain acquisition in cattle.
- Naive cattle were introduced into a herd in southern Ghana with high infection prevalence and transmission.
- Strain acquisition was monitored over time, correlating with seroconversion events.
Main Results:
- High genetic diversity of Anaplasma marginale strains was observed.
- Nearly all herd animals (97%) harbored multiple strains.
- Coinfection was the predominant mode of complex infection development, with more strains acquired before seroconversion than after.
Conclusions:
- Complex infections of Anaplasma marginale in cattle develop through both coinfection and superinfection.
- Coinfection is the primary mechanism driving complex infections in high-transmission settings.
- Findings inform the development of targeted control strategies for cattle tick-borne diseases.
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