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Published on: April 5, 2024
Within-host competitive exclusion among species of the anther smut pathogen
Alexander Gold1, Tatiana Giraud, Michael E Hood
1Department of Biology, Amherst College, Amherst, MA 01002, USA. dagold@student.unsw.edu.au
Background:
Host individuals represent an arena in which pathogens compete for resources and transmission opportunities, with major implications for the evolution of virulence and the structure of populations. Studies to date have focused on competitive interactions within pathogen species, and the level of antagonism tends to increase with the genetic distance between competitors. Anther-smut fungi, in the genus Microbotryum, have emerged as a tractable model for within-host competition. Here, using two pathogen species that are frequently found in sympatry, we investigated whether the antagonism seen among genotypes of the same species cascades up to influence competition among pathogen species.
Results:
Sequential inoculation of hosts showed that a resident infection most often excludes a challenging pathogen genotype, which is consistent with prior studies. However, the challenging pathogen was significantly more likely to invade the already-infected host if the resident infection was a conspecific genotype compared to challenges involving a closely related species. Moreover, when inter-specific co-infection occurred, the pathogens were highly segregated within the host, in contrast to intra-specific co-infection.
Conclusion:
We show evidence that competitive exclusion during infection can be greater among closely related pathogen species than among genotypes within species. This pattern follows from prior studies demonstrating that genetic distance and antagonistic interactions are positively correlated in Microbotryum. Fungal vegetative incompatibility is a likely mechanism of direct competitive interference, and has been shown in some fungi to be effective both within and across species boundaries. For systems where related pathogen species frequently co-occur in the same host populations, these competitive dynamics may substantially impact the spatial segregation of pathogen species.
Insights
Closely related pathogen species compete more intensely within hosts than strains of the same species. This finding suggests that genetic distance influences pathogen competition, impacting disease dynamics and pathogen population structure.
Area of Science:
- Ecology
- Evolutionary Biology
- Mycology
Background:
- Host-pathogen interactions shape pathogen evolution and population structure.
- Competition within hosts is influenced by genetic relatedness of pathogens.
- Anther-smut fungi (Microbotryum) serve as a model for studying within-host competition.
Purpose of the Study:
- Investigate if within-species antagonism among Microbotryum extends to inter-species competition.
- Determine how genetic distance affects competition between pathogen species.
- Explore the impact of pathogen species interactions on host infection dynamics.
Main Methods:
- Sequential inoculation of host plants with different Microbotryum species and genotypes.
- Assessing invasion success of challenging pathogen genotypes against resident infections.
- Analyzing pathogen spatial segregation within hosts during co-infections.
Main Results:
- Resident infections typically excluded challenging pathogen genotypes.
- Invasion was less successful when the resident was a closely related species compared to a conspecific genotype.
- Inter-specific co-infections showed significant spatial segregation of pathogens within hosts.
Conclusions:
- Competitive exclusion is stronger between closely related pathogen species than within a species.
- Positive correlation between genetic distance and antagonism in Microbotryum.
- Fungal vegetative incompatibility likely drives competitive interference across species.
- These dynamics influence pathogen species spatial distribution in sympatric populations.
Related Concept Videos
Microbial Interactions: Competition
Microbial Interactions: Parasitism
Microbe-Plant Interactions
Frequency-dependent Selection
Competition
Diversity of Protists II

