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Authors Hallam

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Hallam, Steven J.


Publications
5

CitationNamesAbstract
Activity-targeted metaproteomics uncovers rare syntrophic bacteria central to anaerobic community metabolism Friedline et al. (2025). Nature Microbiology 10 (11) Syntrophacetatiphaga Syntrophacetatiphaga salishiae Ts
Metagenome-Assembled Genomes for “ Candidatus Phormidium sp. Strain AB48” and Co-occurring Microorganisms from an Industrial Photobioreactor Environment Noonan et al. (2022). Microbiology Resource Announcements 11 (12)
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Comparative genomics reveals electron transfer and syntrophic mechanisms differentiating methanotrophic and methanogenic archaea Chadwick et al. (2022). PLOS Biology 20 (1) Ca. Methanovorans
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Wide diversity of methane and short-chain alkane metabolisms in uncultured archaea Borrel et al. (2019). Nature Microbiology 4 (4) Methanoliparia Methanoliparum thermophilum Ts Methanoliparaceae Methanoliparum Methanoliparales “Methanolliviera hydrocarbonicum”
Insights into the phylogeny and coding potential of microbial dark matter Rinke et al. (2013). Nature 499 (7459) 38 Names

Metagenome-Assembled Genomes for “ Candidatus Phormidium sp. Strain AB48” and Co-occurring Microorganisms from an Industrial Photobioreactor Environment
Here, we report metagenome-assembled genomes for “ Candidatus Phormidium sp. strain AB48” and three cooccurring microorganisms from a biofilm-forming industrial photobioreactor environment, using the PacBio sequencing platform. Several mobile genetic elements, including a double-stranded DNA phage and plasmids, were also recovered, with the potential to mediate gene transfer within the biofilm community.
Comparative genomics reveals electron transfer and syntrophic mechanisms differentiating methanotrophic and methanogenic archaea
The anaerobic oxidation of methane coupled to sulfate reduction is a microbially mediated process requiring a syntrophic partnership between anaerobic methanotrophic (ANME) archaea and sulfate-reducing bacteria (SRB). Based on genome taxonomy, ANME lineages are polyphyletic within the phylumHalobacterota, none of which have been isolated in pure culture. Here, we reconstruct 28 ANME genomes from environmental metagenomes and flow sorted syntrophic consortia. Together with a reanalysis of previously published datasets, these genomes enable a comparative analysis of all marine ANME clades. We review the genomic features that separate ANME from their methanogenic relatives and identify what differentiates ANME clades. Large multiheme cytochromes and bioenergetic complexes predicted to be involved in novel electron bifurcation reactions are well distributed and conserved in the ANME archaea, while significant variations in the anabolic C1 pathways exists between clades. Our analysis raises the possibility that methylotrophic methanogenesis may have evolved from a methanotrophic ancestor.
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