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Martinez de la Parte, E.

Publications and source records attributed to Martinez de la Parte, E..

3 recordsLinked to original sources

Disentangling the importance of microbiological and physicochemical properties of Ethiopian field soils for the Striga seed bank and sorghum infestations

Striga hermonthica (Striga) is a parasitic weed that severely affects sorghum yields in sub-Saharan Africa. Recent studies highlighted the soil microbiomes potential to suppress Striga through interference with specific stages in its life cycle. In this study, meta-analysis of 48 Ethiopian field soils revealed that microbial communities and their interactions with soil physico-chemical properties correlated with Striga field occurrence. Striga infestation of sorghum and soil seedbank levels were negatively correlated with clay content and the nutrients potassium, sulfur, calcium, and carbon. Microbiome analyses indicated that fungal communities were more responsive than bacteria to changes in Striga infestation and seedbank levels, with distinct microbial compositions even in soils where Striga was not detected. Specific fungal and bacterial genera showed both positive and negative correlations with Striga measures, but patterns rarely held across taxonomic levels, highlighting the complexity of microbiome-Striga interactions. To begin to validate these correlations, we tested an isolate from the fungal genus Neocosmospora, which negatively correlated with the Striga seedbank, and showed that this isolate promotes Striga seed germination in vitro, suggesting potential for biological control of Striga. The data and analysis methods are integrated and shared in a public Shiny App for broader analysis and continued research on soil-Striga interactions.

plant biology↗

Tropical Race 4 and Race 1 strains causing Fusarium wilt of banana infect and survive in Heliconia species and ornamental bananas

Fusarium wilt of banana (FWB), caused by soilborne Fusarium spp., is a major global threat to the cultivation of bananas. In addition to persistent chlamydospores, weeds are a reservoir of the causal agents. However, it remains unclear whether other Zingiberales species, which are grown in the same geographic regions, also can serve as hosts for Fusarium spp. that cause FWB. Greenhouse assays were conducted to investigate whether Fusarium phialophorum (Race 1; pathogenic to Gros Michel banana) and Fusarium odoratissimum (TR4; pathogenic to Cavendish banana) can infect three Heliconia species, two ornamental banana species or Musa textilis (abaca). Heliconia latispatha, Musa balbisiana, and Musa coccinea displayed external symptoms after inoculation with TR4, while inoculation with Race 1 caused symptoms in H. latispatha, H. psittacorum, M. coccinea, and M. velutina. Isolates recovered from distinct organs of all studied plant species were characterized and re-isolated strains caused FWB symptoms in Gros Michel and Cavendish banana plants, and their rhizome discolored area scores were similar to the reference strains. The susceptibility of some ornamental species and the presence of Fusarium strains as asymptomatic endophytes in others, with remaining pathogenicity, call for a revision of the race nomenclature and the current containment protocols for FWB.

plant biology↗

Segmental Duplications Drive the Evolution of Accessory Regions in a Major Crop Pathogen

O_LIMany pathogens evolved compartmentalized genomes with conserved core and variable accessory regions which carry effector genes mediating virulence. The fungal plant pathogen Fusarium oxysporum has such accessory regions often spanning entire chromosomes. The presence of specific accessory regions influences the host range, and horizontal transfer of some accessory regions can modify the pathogenicity of the receiving strain. However, understanding how these accessory regions evolve in strains that infect the same host remains limited. C_LIO_LIHere, we define the pan-genome of 69 diverse Fusarium strains that cause Fusarium wilt of banana, a significant constraint to global banana production. In this diverse panel of Fusarium strains infecting banana, we analyzed the diversity and evolution of the accessory regions. C_LIO_LIAccessory regions in Fusarium strains infecting the same banana cultivar are highly diverse, and we could not identify any shared genomic regions and in planta induced effectors. We demonstrate that segmental duplications drive the evolution of accessory regions. Furthermore, we show that recent segmental duplications and aneuploidy occur specifically in accessory chromosomes and cause the expansion of accessory regions in F. oxysporum. C_LIO_LITaken together we conclude that extensive recent duplications drive the evolution of accessory regions in Fusarium, which contribute to the evolution of virulence. C_LI

genomics↗