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Schröder, H.

Publications and source records attributed to Schröder, H..

2 recordsLinked to original sources

Glycine betaine-mediated transcriptional stimulation links its catabolism and vitamin B12 biosynthesis in Rhizobiaceae

Glycine betaine (GB) is a trimethylated ammonium compound widely used as a compatible solute, and serves as a carbon, nitrogen, and methyl group source in many members of the Rhizobiaceae. GB is critical for high-level vitamin B2 production, a cofactor synthesized exclusively by microorganisms. Vitamin B2 formation requires multiple methylation steps. In the industrial vitamin B2 production strain Pseudomonas denitrificans, GB has been shown to serve as a methyl group donor through its successive demethylation to glycine and to provide the carbon backbone for the universal porphyrin precursor 5-aminolevulinic acid. Moreover, previous proteomics studies have revealed increased levels of vitamin B2 biosynthetic enzymes in the presence of GB. However, it has remained unclear at what level of gene expression this regulation occurs. Here, using promoter-reporter fusions in the vitamin B2 overproducer Ensifer adhaerens LU2703 and in the low-producer Sinorhizobium meliloti 102F34, we demonstrate that GB activates promoters of both its own catabolic pathway and of major cob operons. Two of these operons encode the complete set of S-adenosylmethionine-dependent methyltransferases required for corrin ring biosynthesis, the foundational, rate-limiting stage in vitamin B12 production. Stimulation of cobE and cobH promoters as well as vitamin B2 production yields followed sigmoidal dose-response curves with saturation in a similar concentration range, suggesting a tight coupling between GB supply and biosynthetic output. Our findings uncover a novel regulatory layer in vitamin B2 biosynthesis and provide promoter-probe set-ups for further exploration of GB-mediated transcriptional control.

microbiology↗

Semi-Annual Cycles in the Biotic Communities of Temperate Aquatic Habitats

Recurring patterns in biosphere dynamics are anchored in daily and seasonal oscillations in abiotic variables driven by Earths obliquity, rotation, and orbit. While circadian and annual biotic cycles are well studied, persistent supra- or subannual cycles in biotic systems are rarely documented globally. Here, we apply a machine learning approach to DNA metabarcoding time series and detect a biotic semi-annual cycle expressed across aquatic communities in temperate regions across taxonomic domains. We propose that this dynamic reflects a semi-annual mode in insolation and is suppressed under conditions of limited nutrients or sunlight. Our results suggest photoautotrophs are central for the aetiology of the biotic SAM, while demonstrating that it is a community-level phenomena not attributable to single species. The regularity of the biotic SAM suggests value for anticipating less predictable ecological events, including phytoplankton blooms. Overall, our results highlight Earth system-scale forcing of local dynamics and reinforce coupling patterns.

ecology↗