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Steinhagen, S.

Publications and source records attributed to Steinhagen, S..

2 recordsLinked to original sources

The proposed Baltic Sea endemic green alga Monostroma balticum represents a foliose morphotype of Ulva intestinalis (Ulvales, Ulvophyceae).

Green algae in Ulva, Monostroma and similar genera are notoriously difficult to identify morphologically, due to high phenotypic plasticity and the presence of cryptic species - which has historically resulted in a challenging taxonomy, poorly resolved species boundaries, and potentially numerous invalid species descriptions. DNA-based specimen identification, especially combined with analysis of historical herbarium voucher DNA, has huge potential in resolving many unresolved taxonomical problems in these algae. One such example is Monostroma balticum, which has been described as foliose, monostromatic green seaweed known only free-floating, and reported to be endemic to the Baltic Sea. Previous studies have highlighted major uncertainty in the status of this taxon. We conducted an extensive sampling campaign of monostromatic green algae across the Baltic Sea to molecularly, morphologically and ecologically characterise this enigmatic taxon. Additionally, we investigated original exciccate material of M. balticum by using a museomic approach. We show that Monostroma balticum represents a monostromatic, foliose morphotype of the cosmopolitan and ubiquitous species Ulva intestinalis. This foliose growth form is seen in low salinity conditions, and, so far, reported only from the inner basin of the Baltic Sea. Our work shows that using morphology- and DNA-based museomic approaches for contemporary and historical specimens is a powerful combination to resolve long-standing taxonomical uncertainties and to produce new biodiversity information, even in relatively well-studied regions.

plant biology↗

Functional stability despite high taxonomic turnover characterizes the Ulva microbiome across a 2,000 km salinity gradient

The green seaweed Ulva depends on its associated bacteria for morphogenesis and is an important model to study algal-bacterial interactions. Ulva-associated bacteria exhibit high turnover across environmental gradients, leading to the hypothesis that bacteria contribute to the acclimation potential of the host. Yet little is known about the variation in the functional profile of Ulva-associated bacteria in relation to environmental changes. To test which microbial functions shift alongside a strong environmental gradient, we analysed microbial communities of 91 Ulva samples across a 2,000 km Atlantic-Baltic Sea salinity gradient using metagenomic sequencing. Metabolic reconstruction of 639 metagenome-assembled genomes revealed widespread potential for carbon, sulphur, nitrogen, and vitamin metabolism, including amino acid and vitamin B biosynthesis. While salinity explained 70% of taxonomic variation, it only accounted for 17% of functional variation, indicating extensive functional stability. The limited variation was attributed to typical high-salinity bacteria exhibiting enrichment in genes for thiamine, pyridoxal, and betaine biosynthesis. These metabolic modules likely contribute to oxidative stress mitigation, cellular osmotic homeostasis, and membrane stabilization in response to salinity variations. Our results emphasise the importance of functional profiling to understand the seaweed holobiont and its collective response to environmental change.

microbiology↗