The Chloroflexi supergroup is metabolically diverse and representatives have novel genes for non-photosynthesis based CO2 fixation
West-Roberts, J. A.; Matheus Carnevali, P. B.; Scholmerich, M. C.; Al-Shayeb, B.; Thomas, A.; Sharrar, A. M.; He, C. Y.; Chen, L.-X.; Lavy, A.; Keren, R.; Amano, Y.; Banfield, J.
Show abstract
The Chloroflexi superphylum have been investigated primarily from the perspective of reductive dehalogenation of toxic compounds, anaerobic photosynthesis and wastewater treatment, but remain relatively little studied compared to their close relatives within the larger Terrabacteria group, including Cyanobacteria, Actinobacteria, and Firmicutes. Here, we conducted a detailed phylogenetic analysis of the phylum Chloroflexota, the phylogenetically proximal candidate phylum Dormibacteraeota, and a newly defined sibling phylum proposed in the current study, Eulabeiota. These groups routinely root together in phylogenomic analyses, and constitute the Chloroflexi supergroup. Chemoautotrophy is widespread in Chloroflexi. Two Form I Rubisco ancestral subtypes that both lack the small subunit are prevalent in ca. Eulabeiota and Chloroflexota, suggesting that the predominant modern pathway for CO2 fixation evolved in these groups. The single subunit Form I Rubiscos are inferred to have evolved prior to oxygenation of the Earths atmosphere and now predominantly occur in anaerobes. Prevalent in both Chloroflexota and ca. Eulabeiota are capacities related to aerobic oxidation of gases, especially CO and H2. In fact, aerobic and anaerobic CO dehydrogenases are widespread throughout every class-level lineage, whereas traits such as denitrification and reductive dehalogenation are heterogeneously distributed across the supergroup. Interestingly, some Chloroflexota have a novel clade of group 3 NiFe hydrogenases that is phylogenetically distinct from previously reported groups. Overall, the analyses underline the very high level of metabolic diversity in the Chloroflexi supergroup, suggesting the ancestral metabolic platform for this group enabled highly varied adaptation to ecosystems that appeared in the aerobic world.
Matching journals
The top 4 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Genomic potential for photoferrotrophy in a seasonally anoxic Boreal Shield lake 98%
- Novel Asgard archaea phylum Hermodarchaeota degrade alkanes and aromatics via alkyl/benzyl-succinate synthase and benzoyl-CoA pathway 98%
- Genomic and kinetic analysis of novel Nitrospinae enriched by cell sorting 97%
Similar papers in this journal
- New isolates refine the ecophysiology of the Roseobacter CHAB-I-5 lineage 98%
- TbasCO: Trait-based Comparative 'Omics Identifies Ecosystem-Level and Niche-Differentiating Adaptations of an Engineered Microbiome 96%
- Ecological constraints and evolutionary trade-offs shape nitrogen fixation across habitats 96%
Similar papers in this journal
- Novel diversity of polar Cyanobacteria revealed by genome-resolved metagenomics 97%
- The Kocurious case of Noodlococcus: genomic insights into Kocuria rhizophila from characterisation of a laboratory contaminant 96%
- Distribution, organization and expression of genes concerned with anaerobic lactate-utilization in human intestinal bacteria 96%
Similar papers in this journal
Similar papers in this journal
- Validating the Cyc2 neutrophilic Fe oxidation pathway using meta-omics of Zetaproteobacteria iron mats at marine hydrothermal vents 97%
- The defining genomic and predicted metabolic features of the Acetobacterium genus 96%
- Long-term incubation of lake water enables genomic sampling of consortia involving Planctomycetes and Candidate Phyla Radiation bacteria 96%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.