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Authors Mußmann

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Mußmann, Marc


Publications
3

CitationNamesAbstract
Chemosynthetic symbionts of marine invertebrate animals are capable of nitrogen fixation Petersen et al. (2016). Nature Microbiology 2 (1) “Thiodiazotropha endoloripes”
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Single-Cell (Meta-)Genomics of a Dimorphic Candidatus Thiomargarita nelsonii Reveals Genomic Plasticity Flood et al. (2016). Frontiers in Microbiology 7 Ca. Thiomargarita nelsonii
Vacuolated Beggiatoa ‐like filaments from different hypersaline environments form a novel genus Hinck et al. (2011). Environmental Microbiology 13 (12) “Allobeggiatoa salina”
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Chemosynthetic symbionts of marine invertebrate animals are capable of nitrogen fixation
Abstract Chemosynthetic symbioses are partnerships between invertebrate animals and chemosynthetic bacteria. The latter are the primary producers, providing most of the organic carbon needed for the animal host's nutrition. We sequenced genomes of the chemosynthetic symbionts from the lucinid bivalve Loripes lucinalis and the stilbonematid nematode Laxus oneistus . The symbionts of both host species encoded nitrogen fixation genes. This is remarkable as no marine chemosynthetic symbiont was previously known to be capable of nitrogen fixation. We detected nitrogenase expression by the symbionts of lucinid clams at the transcriptomic and proteomic level. Mean stable nitrogen isotope values of Loripes lucinalis were within the range expected for fixed atmospheric nitrogen, further suggesting active nitrogen fixation by the symbionts. The ability to fix nitrogen may be widespread among chemosynthetic symbioses in oligotrophic habitats, where nitrogen availability often limits primary productivity.
Vacuolated Beggiatoa ‐like filaments from different hypersaline environments form a novel genus
Summary In this study, members of a specific group of thin (6–14 µm filament diameter), vacuolated Beggiatoa‐ like filaments from six different hypersaline microbial mats were morphologically and phylogenetically characterized. Therefore, enrichment cultures were established, filaments were stained with fluorochromes to show intracellular structures and 16S rRNA genes were sequenced. Morphological characteristics of Beggiatoa‐ like filaments, in particular the presence of intracellular vacuoles, and the distribution of nucleic acids were visualized. In the intracellular vacuole nitrate reached concentrations of up to 650 mM. Fifteen of the retrieved 16S rRNA gene sequences formed a monophyletic cluster and were phylogenetically closely related (≥ 94.4% sequence identity). Sequences of known filamentous sulfide‐oxidizing genera Beggiatoa and Thioploca that comprise non‐vacuolated and vacuolated filaments from diverse habitats clearly delineated from this cluster. The novel monophyletic cluster was furthermore divided into two sub‐clusters: one contained sequences originating from Guerrero Negro (Mexico) microbial mats and the other comprised sequences from five distinct Spanish hypersaline microbial mats from Ibiza, Formentera and Lake Chiprana. Our data suggest that Beggiatoa ‐like filaments from hypersaline environments displaying a thin filament diameter contain nitrate‐storing vacuoles and are phylogenetically separate from known Beggiatoa . Therefore, we propose a novel genus for these organisms, which we suggest to name ‘ Candidatus Allobeggiatoa’.
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