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Katayama, Y. A.

Publications and source records attributed to Katayama, Y. A..

2 recordsLinked to original sources

Phylogenetic diversity of the carbon monoxide-utilizing prokaryotes and their divergent carbon monoxide metabolisms in the human gut microbiome

Although the production of toxic CO within the human body has been detected, only a few CO-utilizing prokaryotes (CO utilizers) have been reported in the human gut, and their phylogenetic and physiological diversity remains unclear. Here, we unveiled more than thousand representative genomes originating from previously unexplored potential CO-utilizing prokaryotes, which contain CO dehydrogenase (CODH) genes. More than half of CODH-bearing prokaryotes possess genes for the autotrophic Wood-Ljungdahl pathway (WLP). However, 79% of these prokaryotes commonly lack a key gene for WLP, which encodes enzyme that synthesizes formate from CO2 and reductants such as H2, suggesting that they share a degenerated WLP. Instead, many were predicted to possess an alternative way of synthesizing formate from pyruvate, which is a product of glycolysis. In addition to degenerated WLP, seven genes neighboring the CODH gene were found, which may reflect diverse utilization of CO in the human gut. Our findings reveal the unique and diverse nature of CO metabolism in the human gut microbiome, suggesting its potential contribution to CO consumption and gut homeostasis. Impact statementCarbon monoxide (CO)-utilizing prokaryotes mitigate the toxic impact of CO by consuming it as energy and/or carbon sources. In addition to various environments, CO is also produced via multiple routes, such as heme degradation, in the human body and accumulates in the gut. Revealing CO-utilizing prokaryotes and their CO metabolisms in the human gut would contribute to gaining insight into how microbial community functions are involved in maintaining human gut homeostasis. Nevertheless, the limited number of CO utilizers in the human gut microbiome have been reported. In our study, a significant proportion of human gut microbial genomes belonging to diverse phyla were revealed to be of potential CO-utilizing prokaryotes. Additionally, the majority of CO-utilizing prokaryote genomes in the human gut have potentially remodeled the Wood- Ljungdahl pathway (WLP), one of the most well-known autotrophic pathways, to the degenerated, heterotrophic form. Moreover, there were seven other genes neighboring CODH in the human gut CO-utilizers, suggesting various CO utilization. Our findings would pave the way for future explorations into microbial metabolic adaptations and their implications for human health. Data summaryThe human gut prokaryote genomes were downloaded from HumGut database (Hiseni et al. 2021; https://arken.nmbu.no/~larssn/humgut/). The accession numbers of CODH/ACS-bearing genomes from environments without host-association (Inoue et al., 2022) are listed in Table S1. Metatranscriptomic datasets were downloaded from the NCBI Sequence Read Archive (SRA) under the Bioproject accession numbers PRJNA354235 and PRJNA707065 and their accession IDs are listed in Table S2.

microbiology↗

Isolation and genomic and physiological characterization of Parageobacillus sp. G301, the isolate capable of both hydrogenogenic and aerobic carbon monoxide oxidation

Prokaryotes, known as carbon monoxide (CO) oxidizers, use CO as the carbon or energy source with CO dehydrogenases (CODHs), which are divided into nickel-containing CODH (Ni-CODH) that are sensitive to O2 and molybdenum-containing CODH (Mo-CODH) that are capable of aerobic functioning. The oxygen conditions for CO oxidizers to oxidize CO may be limited because CO oxidizers isolated and characterized so far have either Ni- or Mo-CODH. Here, we report a novel CO oxidizer capable of CO oxidation with both types of CODH based on genomic and physiological characterization of the isolate Parageobacillus sp. G301. This thermophilic facultative anaerobic Bacillota bacterium was isolated from the sediment of a freshwater lake. Genomic analyses showed that G301 was the only isolate possessing both Ni-CODH and Mo-CODH. Genome-based reconstruction of the respiratory machinery and physiological investigation indicated that CO oxidation by Ni-CODH was coupled with H2 production (proton reduction), and CO oxidation by Mo-CODH was coupled with O2 reduction under aerobic conditions and nitrate reduction under anaerobic conditions. G301 would thus be able to thrive via CO oxidation under a wide range of conditions, from aerobic environments to anaerobic environments even without terminal electron acceptors other than protons. As comparative genome analyses revealed no significant differences in genome structures and encoded cellular functions, except for CO oxidation between CO oxidizers and non-CO oxidizers in the genus Parageobacillus, CO oxidation genes would be retained exclusively for CO metabolism and related respiration. ImportanceMicrobial CO oxidation has received a lot of attention because it contributes to global carbon cycling in addition to functioning as a remover of CO, which is toxic to many organisms. Microbial CO oxidizers have a punctate phylogenetic distribution throughout bacteria and archaea, even in genus-level monophyletic groups. In this study, we demonstrated that the new isolate Parageobacillus sp. G301 is capable of both anaerobic (hydrogenogenic) and aerobic CO oxidation, which had not been previously reported. The discovery of this new isolate, which is versatile in CO metabolism, would accelerate research into such CO oxidizers with diverse CO metabolisms, expanding our understanding of microbial diversity. Through comparative genomic analyses, we propose that CO oxidation genes are optional but not essential genetic elements in the genus Parageobacillus, providing insight into a factor that shapes the mosaic phylogenetic distribution of CO oxidizers, even in genus-level monophyletic groups.

microbiology↗