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Wikner, J.

Publications and source records attributed to Wikner, J..

3 recordsLinked to original sources

Temperature and dissolved organic matter shape marine prokaryotic activity and gene expression in a sub-arctic sea

Temperature and dissolved organic matter (DOM) are important drivers of microbial activity, but their effects, alone or in combination, on the physiological responses of sub-arctic prokaryotic assemblages remain poorly understood. In a northern Baltic Sea one-month mesocosm experiment, we therefore exposed a coastal microbial community to temperature and nutrient regimes representative of winter and early summer (i.e., 1{degrees}C and 10{degrees}C, with and without DOM additions) in a 2x2 factorial design. Midway through the experiment, specific growth rates were highest for the 10{degrees}C plus DOM treatment (TN; [~]2.5 day-1), comparable for the 1{degrees}C plus DOM (N) and the 10{degrees}C (T) treatments at [~]1.0 day-1; and low for the control (1{degrees}C, no DOM enrichment [C]; 0.2 day-1). Taxonomic analysis of metatranscriptomes uncovered broad treatment specific responses, and a PERMANOVA on the 182,618 transcribed genes revealed statistically significant effects of both temperature and DOM, and significant interaction effects between the two (altogether involving 18% of genes). Significant differences in transcription identified by EdgeR analysis included Nitrosopumilus genes for ammonium uptake and ammonia oxidation in the 1{degrees}C mesocosms (C, N), membrane transporters for small organic acids in the N-treatment, genes for nitrogen and phosphorus assimilation along with molecular chaperones in the T-treatment, and dominance of Oceanospirillales genes for energy and growth metabolism in the TN-treatment. These metatranscriptomic responses were associated with changes in e.g. prokaryotic growth rates and growth efficiency, providing clues to how successional changes in community composition and metabolism are directed by temperature and DOM as central factors underlying environmental change. ImportanceIt is recognized that increases in temperature and dissolved organic matter loading are key to understanding how climate change will influence polar ecosystems. Still, little is known of the effects of these factors on the physiological responses of Arctic prokaryotes. Since prokaryotes are principal drivers of biogeochemical cycles, we investigated how temperature and dissolved organic matter influence prokaryotic transcriptional responses in taxonomy and metabolic pathways. The metatranscriptomics analyses uncovered broad treatment specific responses linked with changes in prokaryotic community composition, growth rates, and growth efficiency. Yet, and importantly, the expression of most metabolic functions remained stable, suggesting a pronounced functional resilience of the prokaryotic community enabled by shifts in the dominance of different taxa. This emphasizes the large potential and importance of identifying the metabolic functions that underlie the divergence of prokaryotic communities in response to environmental changes projected to alter some of the most vulnerable marine environments.

ecology↗

Community stability increases the predictability of microeukaryote community coalescence outcomes

Mixing of entire microbial communities represents a frequent, yet understudied phenomenon. Here, we mimicked estuarine condition in a microcosm experiment by mixing a freshwater river community with a brackish sea community and assessed the effects of both environmental and community coalescences induced by varying mixing processes on microeukaryotic communities. Signs of shifted community composition of coalesced communities towards the sea parent community suggest asymmetrical community coalescence outcome, which, in addition, was generally less impacted by environmental coalescence. Diatoms were negatively impacted by coalescence, while fungi, ciliates, and cercozoans were promoted to varying extents, depending on the mixing ratios of the source (i.e., river or sea) communities. Community stability, inferred from community cohesion, suggests that the more stable parent community (i.e., community with greater negative cohesion attributed to competitive interactions) dominates the final, coalesced community, but the fate of its community members is influenced by mixing ratios and frequencies (i.e., one-time versus repeated coalescence). Generally, community coalescence increased alpha diversity and promoted competition from the introduction (or emergence) of additional (or rare) species. These competitive interactions in turn had community stabilizing effect as evidenced by the increased proportion of negative cohesion. Our study suggests that the predictability of coalescence outcomes was greater when the more stable parent community (i.e., sea microbes) dominated the final community and this predictability was further enhanced when communities collided repeatedly. Open research statementSequencing data is deposited to NCBI SRA database under the accession number PRJNA922225. Data (OTU table, consensus taxonomy and metadata) are available in Open Science Framework (OSF) (http://osf.io/sme36).

ecology↗

Co-occurrences enhance our understanding of aquatic fungal metacommunity assembly and reveal potential host-parasite interactions

Our knowledge of aquatic fungal communities, their assembly, distributions and ecological roles in marine ecosystems is scarce. Hence, we aimed to investigate fungal metacommunities of coastal habitats in a subarctic zone (northern Baltic Sea, Sweden). Using a novel joint species distribution model and network approach, we quantified the importance of biotic associations contributing to the assembly of mycoplankton, further, detected potential biotic interactions between fungi-algae pairs, respectively. Our long-read metabarcoding approach identified 504 fungal taxa, of which a dominant fraction (44.8 %) was assigned as early-diverging fungi (i.e., Cryptomycota and Chytridiomycota). Alpha diversity of mycoplankton declined and community compositions changed along inlet-bay- offshore transects. The distributions of most fungi were rather influenced by spatial factors than by environmental drivers, and the influence of biotic associations was pronounced when environmental filtering was weak and spatial patterning lessened. We found great number of co-occurrences (138) among the dominant fungal groups, and the forty associations between fungal and algal OTUs suggested potential host-parasite/saprotroph links, supporting a Cryptomycota-based mycoloop pathway. We emphasize that the contribution of biotic associations to mycoplankton assembly are important to consider in future studies as it helps to improve predictions of species distributions in aquatic ecosystems.

ecology↗