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Mudiyanselage, S. D.

Publications and source records attributed to Mudiyanselage, S. D..

2 recordsLinked to original sources

Genomic Insights into a Multispecies Bacterial Pathogen Complex Driving Bacterial Blotch in White Button Mushrooms.

Bacterial blotch remains a major constraint to global white button mushroom (Agaricus bisporus) industry, yet its etiological complexity has been underestimated. Through a genome resolved, polyphasic approach applied to symptomatic mushrooms collected from United States, we uncovered an unexpectedly diverse complex of Pseudomonas species driving blotch disease. Beyond classical pathogens (P. tolaasii, P. gingeri, P. agarici, and P. "reactans", P. yamanorum, Pseudomonas sp. NC02), our analyses revealed a striking prevalence of P. azotoformans, a species not previously associated with mushroom pathology, alongside P. pergaminensis, P. monsensis, P. tensinigenes, P. simiae, Pseudomonas sp. Irchel 3A7, Pseudomonas sp. REP124 and two putatively novel lineages. Comparative genomics demonstrated pronounced heterogeneity in accessory genome content, with P. azotoformans exhibiting exceptional genomic plasticity indicative of broad ecological adaptability. Secondary metabolite profiling and white line assays further delineated species-specific chemotaxonomic signatures, underscoring the multifactorial nature of virulence. Collectively, this study provides the most comprehensive genomic and phenotypic characterization of blotch-associated Pseudomonas in Northern America, overturning the long-held paradigm of a single dominant pathogen. By establishing that bacterial blotch is multispecies disease complex, our findings redefine its epidemiology and lay the foundation for improved diagnostics strategies in mushroom production systems. The emergence and high prevalence of P. azotoformans underscore the limitations of diagnostic protocols focused exclusively on classical blotch pathogens and highlight the need for broader, genomics informed detection strategies. Collectively, this work offers actionable insights to strengthen production resilience and support the sustainability of white button mushroom cultivation as the worlds most economically important specialty food crop.

microbiology↗

Interactions Between Native Soil Microbiome and a Synthetic Microbial Community Reveals Bacteria with Persistent Traits

Synthetic microbial communities (SynComs) are curated microbial groups designed to enhance plant growth or disease resistance by augmenting soil microbiomes. Attaining SynCom stability in the presence of native soil communities remains a key challenge. This study investigated the survival, persistence, and chemical interactions of a SynCom with a native soil microbial community using a transwell system that spatially constrains bacteria while permitting chemical interactions. The SynCom, composed of six compatible Pseudomonas species identified through whole-genome sequencing, was analyzed for antagonistic interactions with native microbes over time and assessed using biomass and viability measurements. Over time, the SynCom exhibitedreduced growth in the presence of native soil microbes compared to the SynCom not exposed to the native microbes. Flow cytometry analysis showed an 81% reduction of live cells for the persistent strain in the presence of native microbes and a 78% and 99% increase in dead and unstained cells, respectively. Compared to a non-persistent strain, one persistent SynCom strain showed lower metabolic utilization across five key compound classes: polymers, carboxylic acids, amino acids, amines, and phenols when exposed to the native soil microbes. These findings underscore the importance of understanding complex SynCom-environment interactions to enhance SynCom stability and optimize in situ applications. ImportanceSynthetic Microbial Communities, or SynComs, are an emerging technology that can potentially augment plant health. Still, their application in situ depends on deciphering the complex interactions between SynCom microbes and native microbial communities. This study provides insight into several Pseudomonas strains displaying persistent characteristics, which makes these bacteria promising candidates for SynCom stability in implanted environments. Understanding the persistent traits of these bacteria is a vital advancement in SynCom technology, and an important next step toward implementing SynComs in agricultural systems.

microbiology↗