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Osvatic, J.

Publications and source records attributed to Osvatic, J..

4 recordsLinked to original sources

Kineochelins - a novel group of siderophores from an Antarctic bacterium

BackgroundThe global rise of antimicrobial resistance has intensified the search for new microbial metabolites from underexplored environments and taxonomic groups. Extreme and geographically isolated habitats, such as Antarctic terrestrial ecosystems, represent promising reservoirs of novel biosynthetic diversity, particularly among rare and difficult-to-cultivate actinomycetes, where chemical mediators are thought to play key roles in microbial persistence and interaction under resource-limited conditions. ResultsHere, we report the characterization of kineochelins, a previously undescribed group of siderophores produced by an Antarctic isolate, Actinokineospora sp. UV203 representing difficult to cultivate actinomycetes. Structural elucidation revealed a set of closely related congener molecules with a mixed-ligand architecture consistent with metal-chelating activity. Genome mining combined with transcriptomic analysis identified the involvement of a dedicated nonribosomal peptide synthetase-encoding biosynthetic gene cluster responsible for kineochelin production. Comparative genomic analyses showed that, although kineochelin biosynthetic genes share limited homology with those of known mixed-ligand siderophores, their biosynthetic pathways differ substantially in gene content and organization, indicating a distinct evolutionary lineage. Functional characterization of kineochelins demonstrated strong and selective iron chelation, with pronounced affinity for ferric and ferrous iron. Crude culture extracts inhibited the growth of bacterial strains isolated from the same Antarctic environment, suggesting that kineochelin-associated chemistry contributes to iron-mediated competitive interactions within native microbial communities. In addition, kineochelin-enriched fractions exhibited selective inhibitory activity against the opportunistic yeast pathogen Nakaseomyces glabratus and a clinical isolate of Saccharomyces cerevisiae associated with invasive infection. ConclusionsTogether, these findings expand the known chemical and biosynthetic diversity of the genus Actinokineospora and demonstrate that Antarctic rare actinomycetes are a valuable source of novel natural products with potential relevance for microbial ecology and biotechnology. The ecological activities of kineochelins highlight the role of iron acquisition in shaping microbial interactions in extreme environments and underscore the biotechnological potential of metabolites derived from underexplored polar microorganisms.

microbiology↗

Symbiont diversity within Loripes orbiculatus and the case for multiple hosts

Seagrasses support immense biodiversity and are critical for maintaining coastal ecosystem health. These foundation species benefit from a three-way facultative relationship with one of the common inhabitants of seagrass meadows, lucinid bivalves, which host specific bacterial Ca. Thiodiazotropha symbionts. Relatives of the bivalve symbionts have been detected on seagrass roots raising the possibility that these symbionts may colonize both animals and plants; however, no study has yet compared bivalve- and seagrass-associated symbionts at the same site and time. Our combination of 16S rRNA amplicon and metagenome sequencing revealed a greater diversity than was previously observed within both lucinid bivalves and on seagrass roots from the Adriatic Sea. We show that two of the Ca. Thiodiazotropha ASVs found on seagrass roots are identical to those found in bivalve hosts at the same site. This suggests that symbiont sharing may occur in the seagrass habitat between these two species, which has important evolutionary and ecological implications for both hosts and symbionts, as well as thin response to climate change.

microbiology↗

Rapid genetic diversification of Bacteroides thetaiotaomicron in mono-associated mice revealed through deep population-level sequencing

Bacteria often feature short generation times and large populations, thereby allowing them to quickly evolve and adapt to new environments. Although it is known that gut bacteria can evolve on relatively short time scales, the extent of genetic diversification of bacteria in the gut environment remains underexplored. Here, we characterize the genetic diversification of the gut commensal Bacteroides thetaiotaomicron during 28 days of colonization of germ-free mice using deep shotgun sequencing as well as genome analysis of evolved isolates. We detect thousands of genetic polymorphisms as early as three days post inoculation and observe highly dynamic genetic diversity in the distal gut. We identify multiple haplotypes of a phase-variable polysaccharide utilization locus (BT2260 - BT2268) and propose that phase variation may be an important mechanism for diversification and adaptation in the gut. In addition, we find evidence that hybrid two-component system (HTCS) regulators are mutational hotspots. We identify multiple persistent and parallelly evolved genetic polymorphisms in genes, including the TonB-dependent transporter BT0867 - a homolog of BF3581 from the commensal colonization factor (ccf) in B. fragilis. Lastly, we find that the small intestine accumulated approximately 20 times more polymorphisms compared to the large intestine, highlighting overall the importance of studying spatiotemporal distribution of genetic variants. These results underscore the prevalence of rapid genetic diversification of gut bacteria, which may have important implications for adaptation as well as interactions in the microbiome and with the host. ImportanceStudying the within-host evolution of gut commensals is an essential step for understanding the role of microbiome in health and disease. It can provide insights into the mechanisms underlying the development of various gastrointestinal disorders, metabolic conditions, autoimmune diseases, and other health disorders. Additionally, this kind of research can further drive the development of personalized therapies, such as strain-level or gene specific interventions for improving health outcomes. Here, we report extensive genetic variation within days upon colonization of mice with B. thetaiotaomicron and identify genes that accumulate persistent and highly prevalent genetic polymorphisms across a mouse population. We also detect several haplotypes in phase-variable loci. Altogether, our findings underscore the rapid pace of genetic diversification and phase variation upon colonization of the gut environment.

microbiology↗

Extensive richness and novel taxa of sulfoquinovose-degrading bacteria in the cow rumen

Sulfoquinovose (SQ), a sulfonated sugar derived from the thylakoid membrane lipid sulfoquinovosyl diacylglycerol (SQDG), is abundant in photosynthetic organisms and plays a key role in global sulfur cycling. Its degradation in nature is mediated by specialized bacteria, many of which rely on the enzyme sulfoquinovosidase (YihQ) to release SQ from SQDG. Despite its ecological importance, the diversity and functional roles of SQ-degrading microorganisms remain poorly characterized in natural environments. Here, we developed a yihQ-targeted amplicon sequencing approach to investigate the richness and distribution of SQ-degrading bacteria across selected environments, including marine sediments and the mammalian gut. We revealed particularly high richness of yihQ-containing microorganisms in cow rumen, far exceeding that observed in human and mouse gut microbiomes, suggesting an important role of SQ metabolism in ruminant digestion. Anaerobic microcosm experiments with SQ-amended rumen fluid revealed cooperative microbial degradation of SQ to sulfide via isethionate cross-feeding. Amplicon sequencing and genome-resolved metagenomics identified novel uncultured SQ-degrading taxa, including members of Caproiciproducens (Acutalibacteraceae), Limivicinus (Oscillospiraceae), and Sphaerochaetaceae, which encode the sulfo-transketolase pathway, along with Mailhella (Desulfovibrionaceae), a likely isethionate-respiring bacterium. This study presents the first functional gene-based assay for tracking environmental yihQ diversity, highlights SQ degradation as a central metabolic process in the cow rumen, describes novel SQ-metabolizing bacteria, and advances understanding of sulfur physiology in complex microbial communities.

microbiology↗