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Ulrich, J. F.

Publications and source records attributed to Ulrich, J. F..

2 recordsLinked to original sources

Conserved bacterial genes for biosynthesis of the algal morphogen thallusin span land and sea

Bacterial signals control the development of marine algae, yet the molecular basis of these cross-kingdom interactions remains largely unknown. Thallusin is the paradigmatic case: isolated in 2005, it induces rhizoid and cell wall formation in the green seaweed Ulva at picomolar concentrations, but its biosynthesis has remained elusive for two decades. Comparative genomics across five bacterial phyla identifies a conserved set of genes - the eustigmatophyte bacterial operon (ebo) - as determinants of thallusin biosynthesis. Isotope labeling, heterologous expression, and gene deletion in Stieleria maiorica show that the aromatic scaffold derives from a cyclitol precursor and L-aspartate, with subsequent prenylation and cyclization. Searching 124,295 prokaryotic genomes identifies producers in eleven bacterial lineages, including soil cyanobacteria, establishing thallusin as a widespread cross-kingdom signal reaching beyond the ocean.

microbiology↗

Algal growth and morphogenesis-promoting factors released by cold-adapted bacteria contribute to the resilience and morphogenesis of the seaweed Ulva (Chlorophyta) in Antarctica (Potter Cove)

Macroalgae are found in a variety of marine vegetation ecosystems around the world, contributing significantly to global net primary production. In particular, the sea lettuce species, i.e., members of the genus Ulva (Chlorophyta), are located in many ecological niches and are characterized by excellent adaptability to environmental changes but depend on essential associated bacteria, which release algal growth and morphogenesis-promoting-factors (AGMPFs). Our work investigated the hypothesis that bacteria need to be stress-adapted to provide sufficient amounts of AGMPFs for the growth and morphogenesis of Ulva throughout its life cycle, even under severe environmental conditions. Our study thus aimed to understand which bacteria contribute to overcoming a variety of stressors in polar regions. Green macroalgae were collected from Potter Cove, King George Island (Isla 25 de Mayo), Antarctica, to study the associated microbiome and, subsequently, to identify AGMPFs releasing bacteria. Therefore, microbiome analysis was combined with morphogenetic bioassays and chemical analysis, identifying bacteria essential for algal growth under Antarctic conditions. Hereby, axenic cultures of a Mediterranean Ulva compressa (cultivar Ulva mutabilis), previously developed as a model system for bacteria-induced algal growth and morphogenesis, were inoculated with freshly isolated and cultivable Antarctic bacteria to determine their morphogenetic activity. The exploratory microbiome investigation identified numerous cold-adapted AGMPF-producing bacteria. Unlike the reference bacterial strains isolated from the Mediterranean Sea, the cold-adapted isolates Maribacter sp. BPC-D8 and Sulfitobacter sp. BPC-C4, released sufficient amounts of AGMPFs, such as thallusin, necessary for algal morphogenesis even at 2{degrees}C. Our results illustrate the role of chemical mediators provided by bacteria in cross-kingdom interactions under cold conditions within aquatic systems. The newly isolated bacteria will enable further functional studies to understand the resilience of the holobiont Ulva and might applied in algal aquaculture even under adverse conditions. The study highlights the importance of ecophysiological assays in microbiome analysis.

plant biology↗