Herbold, Craig W


Publications
4

Cultivation and genomic characterization of novel and ubiquitous marine nitrite-oxidizing bacteria from the Nitrospirales

Citation
Mueller et al. (2023). The ISME Journal 17 (11)
Names
“Nitronereus” “Nitronereus thalassa”
Abstract
Abstract Nitrospirales, including the genus Nitrospira, are environmentally widespread chemolithoautotrophic nitrite-oxidizing bacteria. These mostly uncultured microorganisms gain energy through nitrite oxidation, fix CO2, and thus play vital roles in nitrogen and carbon cycling. Over the last decade, our understanding of their physiology has advanced through several new discoveries, such as alternative energy metabolisms and complete ammonia oxidizers (comammox Nitrospira). Thes
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Taurine as a key intermediate for host-symbiont interaction in the tropical sponge Ianthella basta

Citation
Moeller et al. (2023). The ISME Journal 17 (8)
Names
“Taurinisymbion ianthellae” “Nitrosospongia ianthellae” “Taurinisymbion”
Abstract
Abstract Marine sponges are critical components of marine benthic fauna assemblages, where their filter-feeding and reef-building capabilities provide bentho-pelagic coupling and crucial habitat. As potentially the oldest representation of a metazoan-microbe symbiosis, they also harbor dense, diverse, and species-specific communities of microbes, which are increasingly recognized for their contributions to dissolved organic matter (DOM) processing. Recent omics-based studies of ma
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Novel taxa of Acidobacteriota implicated in seafloor sulfur cycling

Citation
Flieder et al. (2021). The ISME Journal 15 (11)
Names
Sulfomarinibacter kjeldsenii Ts Sulfomarinibacter Sulfomarinibacteraceae Polarisedimenticola svalbardensis Ts Polarisedimenticola Polarisedimenticolaceae Polarisedimenticolia Polarisedimenticolales
Abstract
Abstract Acidobacteriota are widespread and often abundant in marine sediments, yet their metabolic and ecological properties are poorly understood. Here, we examined metabolisms and distributions of Acidobacteriota in marine sediments of Svalbard by functional predictions from metagenome-assembled genomes (MAGs), amplicon sequencing of 16S rRNA and dissimilatory sulfite reductase (dsrB) genes and transcripts, and gene expression analyses of tetrathionate-amended microcosms. Acido
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PeatlandAcidobacteriawith a dissimilatory sulfur metabolism

Citation
Hausmann et al. (2018). The ISME Journal 12 (7)
Names
“Sulfuripaludibacter” “Sulfuritelmatobacter kueseliae” Sulfuritelmatomonas Sulfuritelmatomonas gaucii Ts “Sulfuritelmatobacter”
Abstract
AbstractSulfur-cycling microorganisms impact organic matter decomposition in wetlands and consequently greenhouse gas emissions from these globally relevant environments. However, their identities and physiological properties are largely unknown. By applying a functional metagenomics approach to an acidic peatland, we recovered draft genomes of seven novel Acidobacteria species with the potential for dissimilatory sulfite (dsrAB, dsrC, dsrD, dsrN, dsrT, dsrMKJOP) or sulfate respiration (sat, apr
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