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Population structure and diversity of the needle pathogen Dothistroma pini suggests human-mediated movement in Europe
Ariska van der Nest1, Michael J Wingfield1, Dušan Sadiković2,3
1Department of Biochemistry, Genetics and Microbiology, Forestry and Agricultural Biotechnology Institute (FABI), University of Pretoria, Pretoria, South Africa.
Abstract:
Dothistroma needle blight (DNB) is an important disease of Pinus species that can be caused by one of two distinct but closely related pathogens; Dothistroma septosporum and Dothistroma pini. Dothistroma septosporum has a wide geographic distribution and is relatively well-known. In contrast, D. pini is known only from the United States and Europe, and there is a distinct lack of knowledge regarding its population structure and genetic diversity. The recent development of 16 microsatellite markers for D. pini provided an opportunity to investigate the diversity, structure, and mode of reproduction for populations collected over a period of 12 years, on eight different hosts in Europe. In total, 345 isolates from Belgium, the Czech Republic, France, Hungary, Romania, Western Russia, Serbia, Slovakia, Slovenia, Spain, Switzerland, and Ukraine were screened using microsatellite and species-specific mating type markers. A total of 109 unique multilocus haplotypes were identified and structure analyses suggested that the populations are influenced by location rather than host species. Populations from France and Spain displayed the highest levels of genetic diversity followed by the population in Ukraine. Both mating types were detected in most countries, with the exception of Hungary, Russia and Slovenia. Evidence for sexual recombination was supported only in the population from Spain. The observed population structure and several shared haplotypes between non-bordering countries provides good evidence that the movement of D. pini in Europe has been strongly influenced by human activity in Europe.
Insights
Dothistroma pini, a pathogen causing needle blight in pines, shows significant genetic diversity across Europe. Its spread appears heavily influenced by human activities, with populations structured by location rather than host species.
Area of Science:
- Forest Pathology
- Population Genetics
- Mycology
Background:
- Dothistroma needle blight (DNB) affects Pinus species, caused by Dothistroma septosporum or Dothistroma pini.
- D. pini is less understood than D. septosporum, with limited knowledge of its population genetics and diversity, particularly in Europe.
Purpose of the Study:
- To investigate the genetic diversity, population structure, and reproductive mode of Dothistroma pini in Europe.
- To utilize newly developed microsatellite markers for a comprehensive population-level analysis.
Main Methods:
- Screening of 345 D. pini isolates from 12 European countries and eight host species.
- Utilizing 16 microsatellite markers and species-specific mating type markers.
- Analyzing genetic diversity, haplotype structure, and evidence of sexual recombination.
Main Results:
- 109 unique multilocus haplotypes were identified, indicating high genetic diversity.
- Population structure was primarily influenced by geographic location, not host species.
- Highest genetic diversity was observed in France, Spain, and Ukraine. Sexual recombination was detected only in Spain.
Conclusions:
- Human activity significantly influences the movement and spread of D. pini across Europe.
- Geographic location is a key factor shaping D. pini populations, with host species playing a lesser role.
- Further research into D. pini's population dynamics and reproductive strategies is warranted.
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