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Gazis, R.

Publications and source records attributed to Gazis, R..

4 recordsLinked to original sources

Microbial succession in casing layer shapes bacterial blotch disease associated communities in cultivated white button mushroom: From casing layer to disease

Background: Bacterial blotch is a major disease of cultivated white button mushroom (Agaricus bisporus) traditionally attributed to individual Pseudomonas pathogens. However, the recurrent detection of diverse bacterial taxa in blotch-affected mushrooms suggests that disease may involve broader changes in microbial community organization. We characterized bacterial communities associated with symptomatic and asymptomatic mushrooms and examined bacterial succession in the casing layer across early, pinning, and harvest stages at two commercial mushroom farms in the United States using complementary 16S rRNA gene amplicon sequencing and shotgun metagenomics. Results: Mushroom-associated communities were dominated by Pseudomonas regardless of disease status, indicating that bacterial blotch was not simply associated with increased abundance of the dominant genus. Instead, symptomatic mushrooms exhibited significant community restructuring, enrichment of specific taxa, and markedly reduced microbial network complexity. Species-level metagenomics revealed extensive reorganization within Pseudomonas, with contrasting shifts among multiple blotch-associated lineages, accompanied by changes in non-Pseudomonas taxa, including Mycetocola and Ewingella. Despite these taxonomic shifts, dominant Pseudomonas populations retained broadly conserved functional profiles, with disease-associated enrichment of pathways related to central metabolism, O-antigen biosynthesis, and peptidoglycan maturation. Casing communities underwent pronounced directional succession, shifting from early dominance by Exiguobacterium and Leuconostoc toward enrichment of Flavobacterium, Pedobacter, and Pseudomonas at later stages. Multiple blotch-associated Pseudomonas lineages were detected throughout casing development, while Pseudomonas increased from approximately 2% in early casing to 51% at harvest at the farm with higher disease incidence. Succession occurred without significant changes in alpha diversity, indicating that community development primarily reflected taxon replacement and redistribution. Conclusions: Our findings support a microbiome-centered framework for bacterial blotch in which disease is associated with host and stage dependent microbial succession, species-level community restructuring, and altered microbial connectivity. This framework extends beyond the single-pathogen paradigm and highlights bacterial blotch as a community-level disease process shaped by dynamic interactions between the mushroom host and its surrounding microbiome.

microbiology↗

Phytophthora cinnamomi populations collected from avocado in the United States exhibit high adaptive capacity to climate and disease control methods

Phytophthora cinnamomi, the causal agent of Phytophthora root rot (PRR), poses a persistent threat to the United States avocado industry, the top domestic producer and consumer. Avocado growers are facing clonal A2 P. cinnamomi populations challenging their current PRR control methods. In this study, we characterized 125 isolates collected from orchards in California, Florida, Hawaii, Texas, and Puerto Rico for radial growth per day, optimal growth temperature, in vitro fungicide sensitivity, and virulence on DAnjou pear fruit and UC2001 avocado seedlings. Across all isolates, optimal growth occurred most frequently at a range from 22 to 25{degrees}C; however, a subset of isolates from Hawaii, Florida, and California exhibited higher optimal growth temperatures (28{degrees}C and 30{degrees}C) suggesting thermal adaptation in warmer regions. Potassium phosphite EC50 values spanned from 4.61 to 763.13 {micro}g/ml, with significantly higher insensitivity in isolates from California and Florida, reflecting the continued overuse of this fungicide in these major production states. In contrast, baseline sensitivities to ethaboxam, mandipropamid, mefenoxam, fluopicolide, and oxathiapiprolin were uniformly high, with narrow, unimodal EC50 distributions across states. Finally, a wide range of virulence among isolates was detected using avocado seedlings and DAnjou pear fruits with isolates from California and Puerto Rico being the most virulent. Together, this data documents extensive phenotypic diversity within clonal A2 P. cinnamomi populations including heat-adapted and phosphite-insensitive lineages, establishes multi-state fungicide sensitivity baselines, and underscores the need for continued surveillance, integrated fungicide stewardship (especially phosphonates), and rootstock screening against phenotypically diverse populations to sustain avocado PRR management and ensure the United States avocado industry sustainability and profitability.

microbiology↗

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↗

Nutrient utilization and degradative enzyme activity of the dragon fruit canker pathogen, Neoscytalidium dimidiatum

Dragon fruit canker (DFC), caused by the pathogenic fungus Neoscytalidium dimidiatum, is a severe disease that threatens dragon fruit production worldwide. Current management efforts largely rely on fungicide applications and sanitation measures; however, the pathogens molecular genetic characterization, nutrient utilization preferences, and extracellular enzyme activities remain poorly understood. Using calcofluor white-based fluorescence microscopy, we demonstrate that nutrient limitation significantly restricts the growth and maturation of N. dimidiatum, impairing melanization and sporulation. Carbon utilization assays revealed a preference for maltose, suggesting reliance on starch-derived sugars. In addition, nitrogen utilization assays indicated efficient assimilation of complex organic nitrogen sources rich in peptides and amino acids. Finally, we experimentally validated extracellular enzymatic activities involved in host macromolecule degradation, including cellulase, amylase, pectinase, and protease activities. Collectively, these findings provide new insights into the physiology and pathogenic potential of N. dimidiatum and establish a foundation for developing improved strategies to mitigate DFC. Impact StatementNeoscytalidium dimidiatum is the causal agent of dragon fruit canker (DFC), one of the most devastating diseases affecting dragon fruit. Here, we investigated key features of N. dimidiatum biology relevant to disease development, including nutrient preferences and degradative enzyme activity. Our findings indicate that N. dimidiatum preferentially utilizes maltose as a carbon source, consistent with the use of starch-derived sugars, and grows efficiently on rich, complex organic nitrogen sources. Plate-based enzymatic assays aligned with these nutrient utilization patterns, revealing cellulase, amylase, pectinase, and protease activities. Collectively, this study provides new insights into N. dimidiatum physiology and establishes a foundation for future virulence studies that can ultimately support the development of improved DFC mitigation strategies.

microbiology↗