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cognitis nomina
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Authors Gao

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Gao, Lei


Publications
4

CitationNamesAbstract
Phylogenetic diversity, ecological function, and evolutionary history of three novel phyla: Yinglongibacterota , Xuanmingibacterota , and Gonggongibacterota Zhang et al. (2026). Journal of Systematics and Evolution 28 Names
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Insights into chemoautotrophic traits of a prevalent bacterial phylum CSP1-3, herein Sysuimicrobiota Liu et al. (2024). National Science Review 11 (11) 32 Names
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Cultivation of novel Atribacterota from oil well provides new insight into their diversity, ecology, and evolution in anoxic, carbon-rich environments Jiao et al. (2024). Microbiome 12 (1) 27 Names
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Reversed oxidative TCA (roTCA) for carbon fixation by an Acidimicrobiia strain from a saline lake Gao et al. (2024). The ISME Journal 18 (1) Salinilacustrithrix Salinilacustritrichaceae
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Phylogenetic diversity, ecological function, and evolutionary history of three novel phyla: Yinglongibacterota , Xuanmingibacterota , and Gonggongibacterota
Abstract Geothermal systems harbor abundant novel microorganisms, representing substantial phylogenetic and functional diversity among yet‐to‐be‐cultivated bacteria with significant ecological roles. Nevertheless, research on the diversity, metabolic potential, and evolutionary history of these uncultured taxa remains limited. In this study, 19 metagenome‐assembled genomes (MAGs) were recovered from hot springs in Tengchong, Yunnan Province. Phylogenetic analyses indicate that these MAGs form sister lineages to an existing clade, leading to their proposed classification within three novel phyla: Yinglongibacterota , Xuanmingibacterota , and Gonggongibacterota , named after figures from the traditional Chinese legend, Classics of Mountains and Seas. Sequence analysis of both hot spring‐derived and published MAGs reveals that all three phyla exhibit similar facultative anaerobic lifestyles. Multiple substrates, including cellulose, glucan, pectin, and xylan, can be degraded by these phyla, especially Gonggongibacterota , suggesting their critical role in converting complex plant matter into more readily degradable substrates and contributing to sugar fermentation. Furthermore, the ability of these phyla to reduce selenite facilitates environmental detoxification. Notably, gene loss events have resulted in widespread auxotrophy for heme and biotin in these lineages, which may indicate microbial cross‐feeding in the community as an adaptation strategy. These pioneering results provide a comprehensive overview of the taxonomic and metabolic characteristics of the three novel phyla, offering insights into their ecological significance and guiding future cultivation efforts.
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Insights into chemoautotrophic traits of a prevalent bacterial phylum CSP1-3, herein Sysuimicrobiota
ABSTRACT Candidate bacterial phylum CSP1-3 has not been cultivated and is poorly understood. Here, we analyzed 112 CSP1-3 metagenome-assembled genomes and showed they are likely facultative anaerobes, with 3 of 5 families encoding autotrophy through the reductive glycine pathway (RGP), Wood–Ljungdahl pathway (WLP) or Calvin-Benson-Bassham (CBB), with hydrogen or sulfide as electron donors. Chemoautotrophic enrichments from hot spring sediments and fluorescence in situ hybridization revealed enrichment of six CSP1-3 genera, and both transcribed genes and DNA-stable isotope probing were consistent with proposed chemoautotrophic metabolisms. Ancestral state reconstructions showed that the ancestors of phylum CSP1-3 may have been acetogens that were autotrophic via the RGP, whereas the WLP and CBB were acquired by horizontal gene transfer. Our results reveal that CSP1-3 is a widely distributed phylum with the potential to contribute to the cycling of carbon, sulfur and nitrogen. The name Sysuimicrobiota phy. nov. is proposed.
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Cultivation of novel Atribacterota from oil well provides new insight into their diversity, ecology, and evolution in anoxic, carbon-rich environments
Abstract Background The Atribacterota are widely distributed in the subsurface biosphere. Recently, the first Atribacterota isolate was described and the number of Atribacterota genome sequences retrieved from environmental samples has increased significantly; however, their diversity, physiology, ecology, and evolution remain poorly understood. Results We report the isolation of the second member of Atribacterota, Thermatribacter velox gen. nov., sp. nov., within a new family Thermatribacteraceae fam. nov., and the short-term laboratory cultivation of a member of the JS1 lineage, Phoenicimicrobium oleiphilum HX-OS.bin.34TS, both from a terrestrial oil reservoir. Physiological and metatranscriptomics analyses showed that Thermatribacter velox B11T and Phoenicimicrobium oleiphilum HX-OS.bin.34TS ferment sugars and n-alkanes, respectively, producing H2, CO2, and acetate as common products. Comparative genomics showed that all members of the Atribacterota lack a complete Wood-Ljungdahl Pathway (WLP), but that the Reductive Glycine Pathway (RGP) is widespread, indicating that the RGP, rather than WLP, is a central hub in Atribacterota metabolism. Ancestral character state reconstructions and phylogenetic analyses showed that key genes encoding the RGP (fdhA, fhs, folD, glyA, gcvT, gcvPAB, pdhD) and other central functions were gained independently in the two classes, Atribacteria (OP9) and Phoenicimicrobiia (JS1), after which they were inherited vertically; these genes included fumarate-adding enzymes (faeA; Phoenicimicrobiia only), the CODH/ACS complex (acsABCDE), and diverse hydrogenases (NiFe group 3b, 4b and FeFe group A3, C). Finally, we present genome-resolved community metabolic models showing the central roles of Atribacteria (OP9) and Phoenicimicrobiia (JS1) in acetate- and hydrocarbon-rich environments. Conclusion Our findings expand the knowledge of the diversity, physiology, ecology, and evolution of the phylum Atribacterota. This study is a starting point for promoting more incisive studies of their syntrophic biology and may guide the rational design of strategies to cultivate them in the laboratory.
Reversed oxidative TCA (roTCA) for carbon fixation by an Acidimicrobiia strain from a saline lake
Abstract Acidimicrobiia are widely distributed in nature and suggested to be autotrophic via the Calvin–Benson–Bassham (CBB) cycle. However, direct evidence of chemolithoautotrophy in Acidimicrobiia is lacking. Here, we report a chemolithoautotrophic enrichment from a saline lake, and the subsequent isolation and characterization of a chemolithoautotroph, Salinilacustristhrix flava EGI L10123T, which belongs to a new Acidimicrobiia family. Although strain EGI L10123T is autotrophic, neither its genome nor Acidimicrobiia metagenome-assembled genomes from the enrichment culture encode genes necessary for the CBB cycle. Instead, genomic, transcriptomic, enzymatic, and stable-isotope probing data hinted at the activity of the reversed oxidative TCA (roTCA) coupled with the oxidation of sulfide as the electron donor. Phylogenetic analysis and ancestral character reconstructions of Acidimicrobiia suggested that the essential CBB gene rbcL was acquired through multiple horizontal gene transfer events from diverse microbial taxa. In contrast, genes responsible for sulfide- or hydrogen-dependent roTCA carbon fixation were already present in the last common ancestor of extant Acidimicrobiia. These findings imply the possibility of roTCA carbon fixation in Acidimicrobiia and the ecological importance of Acidimicrobiia. Further research in the future is necessary to confirm whether these characteristics are truly widespread across the clade.
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