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Wong-Bajracharya, J.

Publications and source records attributed to Wong-Bajracharya, J..

2 recordsLinked to original sources

Xanthomonas rydalmerenesis sp. nov., a novel plant bacteria isolated from Fragaria x ananassa

We describe five bacterial isolates that were isolated from Fragaria x ananassa in 1976 in Rydalmere, Australia, during routine biosecurity surveillance. Initially, biochemical characterisation identified these isolates as members of the Xanthomonas genus. To determine their species, we conducted further analysis using both phenotypic and genotypic approaches. Phenotypic analysis involved using MALDI-TOF MS and BIOLOG GEN III microplates, which confirmed that the isolates belonged to the Xanthomonas genus but could not classify species. Genome relatedness indices and extensive phylogenetic analysis confirmed that the isolates belonged to the Xanthomonas genus and represented a new species. Based on the absence of virulence factors typically found in Xanthomonas spp. genomes, we suggest that these isolates are non-pathogenic. This conclusion was supported by a pathogenicity assay. Based on these findings, we propose the name Xanthomonas rydalmerenesis, with DAR34855 = ICMP24941 as the type strain.

genetics↗

Genomic innovation and horizontal gene transfer shaped plant colonization and biomass degradation strategies of a globally prevalent fungal pathogen

Members of the fungal genus Armillaria are necrotrophic pathogens with efficient plant biomass-degrading strategies. The genus includes some of the largest terrestrial organisms on Earth, spreading underground and causing tremendous losses in diverse ecosystems. Despite their global importance, the mechanism by which Armillaria evolved pathogenicity in a clade of dominantly non-pathogenic wood-degraders (Agaricales) remains elusive. Here, using new genomic data, we show that Armillaria species, in addition to widespread gene duplications and de novo gene origins, appear to have at least 775 genes that were acquired via 101 horizontal gene transfer (HGT) events, primarily from Ascomycota. Functional and expression data suggest that HGT might have affected plant biomass-degrading and virulence abilities of Armillaria, two pivotal traits in their lifestyle. We further assayed gene expression during root and cambium colonization, and report putative virulence factors, extensive regulation of horizontally acquired and wood-decay related genes as well as novel pathogenicity-induced small secreted proteins (PiSSPs). Two PiSSPs induced necrosis in live plants, suggesting they are potential virulence effectors conserved across Armillaria. Overall, this study details how evolution knitted together horizontally and vertically inherited genes in complex adaptive traits, such as plant biomass degradation and pathogenicity, paving the way for development of infection models for one of the most influential pathogens of temperate forest ecosystems.

genomics↗