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Srinak, N.

Publications and source records attributed to Srinak, N..

2 recordsLinked to original sources

Microbial genome functions explain metabolite-driven dysbiosis and Pseudomonas-associated ammonium toxicity in Hydra

Host-associated microbiomes are typically maintained in stable configurations that support host fitness, yet the mechanisms by which metabolic perturbations destabilize these communities remain poorly understood. Using the freshwater cnidarian Hydra vulgaris AEP, we systematically assessed microbiome responses to 326 single-metabolite perturbations. Only 17 metabolites, mostly amino acid-related compounds, induced significant compositional shifts in the microbial community. Most shifts are accompanied by transitions from Curvibacter- to Pseudomonas-dominated or Legionella-dominated states, indicating the existence of three alternative community states which can be induced by metabolic triggers. Integrating 16S sequences with functional genomic information, we found that {beta}-diversity strongly predicted functional shifts, whereas reduced -diversity was associated with loss of metabolic functions. The metabolite perturbations also altered host-microbe interactions, affecting pathogenicity-, glycocalyx-, and nitrogen-related functions. In particular, nitrogen metabolism shifted from ammonia oxidation in Curvibacter-dominated communities to ammonia reduction in Pseudomonas-dominated states. Experimental validation confirmed that Pseudomonas metabolizes L-arginine and drives environmental ammonia accumulation to levels that could impair Hydras fitness and induce disease phenotypes. Conversely, Limnobacter was found to scavenge the environmental ammonia, potentially mitigating the adverse effects. These results demonstrate that metabolite-driven niche reconfiguration can destabilize host-associated microbiomes by coupling compositional shifts to functional change and host pathology, identifying metabolite-driven niche restructuring as a mechanism linking microbial community instability to host dysfunction.

microbiology↗

Variation in gut microbiome diversity and structure across host lifestyles in Thailand

Global comparisons have revealed marked shifts in gut microbiome diversity and composition with industrialization and urbanization. Whether such changes also arise at finer geographical scales, among neighboring populations adopting different lifestyles, remains largely unexplored. In this study, we characterized the gut microbiomes of Thai populations with distinct lifestyles: urban residents from Bangkok, farmers from Tak province, and foragers from Phatthalung province. Our results reveal that microbiomes of all populations are primarily dominated by the families Prevotellaceae, Bacteroidaceae, and Lachnospiraceae, yet their specific abundances differ between populations. -diversity, particularly Faiths phylogenetic diversity, showed a descending trend from the rural to urban populations. Despite these differences, results suggested that most highly prevalent microbial genera were shared among all groups, suggesting the existence of a consistent core microbiome within the Thai population, despite differing lifestyles. Further, association analysis shows that overall population-wide lifestyle was significantly associated with microbial community structure, explaining 0.5-4% of the variation depending on the {beta}-diversity metrics. Linking dietary habits and other lifestyle factors to genus abundance revealed population-specific microbiome-lifestyle associations, indicating that baseline microbial community composition determines microbiome variability in response to environmental changes. Overall, our study expands the scope of lifestyle-microbiome research and identifies associations between lifestyle and microbial features, underscoring the influence of lifestyle factors and baseline microbiomes on microbial compositional adaptation.

microbiology↗