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1.
Syst Appl Microbiol ; 43(2): 126064, 2020 Mar.
Artigo em Inglês | MEDLINE | ID: mdl-32044151

RESUMO

The ability to grow by anaerobic CO oxidation with production of H2 from water is known for some thermophilic bacteria, most of which belong to Firmicutes, as well as for a few hyperthermophilic Euryarchaeota isolated from deep-sea hydrothermal habitats. A hyperthermophilic, neutrophilic, anaerobic filamentous archaeon strain 1505=VKM B-3180=KCTC 15798 was isolated from a terrestrial hot spring in Kamchatka (Russia) in the presence of 30% CO in the gas phase. Strain 1505 could grow lithotrophically using carbon monoxide as the energy source with the production of hydrogen according to the equation CO+H2O→CO2+H2; mixotrophically on CO plus glucose; and organotrophically on peptone, yeast extract, glucose, sucrose, or Avicel. The genome of strain 1505 was sequenced and assembled into a single chromosome. Based on 16S rRNA gene sequence analysis and in silico genome-genome hybridization, this organism was shown to be closely related to the Thermofilum adornatum species. In the genome of Thermofilum sp. strain 1505, a gene cluster (TCARB_0867-TCARB_0879) was found that included genes of anaerobic (Ni,Fe-containing) carbon monoxide dehydrogenase and genes of energy-converting hydrogenase ([Ni,Fe]-CODH-ECH gene cluster). Compared to the [Ni,Fe]-CODH-ECH gene clusters occurring in the sequenced genomes of other H2-producing carboxydotrophs, the [Ni,Fe]-CODH-ECH gene cluster of Thermofilum sp. strain 1505 presented a novel type of gene organization. The results of the study provided the first evidence of anaerobic CO oxidation coupled with H2 production performed by a crenarchaeon, as well as the first documented case of lithotrophic growth of a Thermofilaceae representative.


Assuntos
Monóxido de Carbono/metabolismo , Hidrogênio/metabolismo , Thermofilaceae/crescimento & desenvolvimento , Thermofilaceae/metabolismo , Aldeído Oxirredutases/genética , Anaerobiose , Processos Autotróficos , Proteínas de Bactérias/genética , DNA Bacteriano/genética , Genoma Bacteriano/genética , Fontes Termais/química , Fontes Termais/microbiologia , Hidrogenase/genética , Complexos Multienzimáticos/genética , Família Multigênica , Oxirredução , Filogenia , RNA Ribossômico 16S/genética , Federação Russa , Análise de Sequência de DNA , Thermofilaceae/classificação , Thermofilaceae/genética
2.
BMC Genomics ; 10: 145, 2009 Apr 02.
Artigo em Inglês | MEDLINE | ID: mdl-19341479

RESUMO

BACKGROUND: Staphylothermus marinus is an anaerobic, sulfur-reducing peptide fermenter of the archaeal phylum Crenarchaeota. It is the third heterotrophic, obligate sulfur reducing crenarchaeote to be sequenced and provides an opportunity for comparative analysis of the three genomes. RESULTS: The 1.57 Mbp genome of the hyperthermophilic crenarchaeote Staphylothermus marinus has been completely sequenced. The main energy generating pathways likely involve 2-oxoacid:ferredoxin oxidoreductases and ADP-forming acetyl-CoA synthases. S. marinus possesses several enzymes not present in other crenarchaeotes including a sodium ion-translocating decarboxylase likely to be involved in amino acid degradation. S. marinus lacks sulfur-reducing enzymes present in the other two sulfur-reducing crenarchaeotes that have been sequenced -- Thermofilum pendens and Hyperthermus butylicus. Instead it has three operons similar to the mbh and mbx operons of Pyrococcus furiosus, which may play a role in sulfur reduction and/or hydrogen production. The two marine organisms, S. marinus and H. butylicus, possess more sodium-dependent transporters than T. pendens and use symporters for potassium uptake while T. pendens uses an ATP-dependent potassium transporter. T. pendens has adapted to a nutrient-rich environment while H. butylicus is adapted to a nutrient-poor environment, and S. marinus lies between these two extremes. CONCLUSION: The three heterotrophic sulfur-reducing crenarchaeotes have adapted to their habitats, terrestrial vs. marine, via their transporter content, and they have also adapted to environments with differing levels of nutrients. Despite the fact that they all use sulfur as an electron acceptor, they are likely to have different pathways for sulfur reduction.


Assuntos
Desulfurococcaceae/genética , Genoma Arqueal , Pyrodictiaceae/genética , Enxofre/metabolismo , Thermofilaceae/genética , Sequência de Aminoácidos , Carboxiliases/metabolismo , Desulfurococcaceae/classificação , Desulfurococcaceae/metabolismo , Transporte de Elétrons , Genômica , Metilmalonil-CoA Descarboxilase/metabolismo , Dados de Sequência Molecular , Filogenia , Pyrodictiaceae/metabolismo , Thermofilaceae/metabolismo , Transposases/genética
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