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1.
J Bacteriol ; 197(9): 1690-9, 2015 May.
Artigo em Inglês | MEDLINE | ID: mdl-25733617

RESUMO

UNLABELLED: Molybdenum nitrogenase (Nif), which catalyzes the reduction of dinitrogen to ammonium, has modulated the availability of fixed nitrogen in the biosphere since early in Earth's history. Phylogenetic evidence indicates that oxygen (O2)-sensitive Nif emerged in an anaerobic archaeon and later diversified into an aerobic bacterium. Aerobic bacteria that fix N2 have adapted a number of strategies to protect Nif from inactivation by O2, including spatial and temporal segregation of Nif from O2 and respiratory consumption of O2. Here we report the complement of Nif-encoding genes in 189 diazotrophic genomes. We show that the evolution of Nif during the transition from anaerobic to aerobic metabolism was accompanied by both gene recruitment and loss, resulting in a substantial increase in the number of nif genes. While the observed increase in the number of nif genes and their phylogenetic distribution are strongly correlated with adaptation to utilize O2 in metabolism, the increase is not correlated with any of the known O2 protection mechanisms. Rather, gene recruitment appears to have been in response to selective pressure to optimize Nif synthesis to meet fixed N demands associated with aerobic productivity and to more efficiently regulate Nif under oxic conditions that favor protein turnover. Consistent with this hypothesis, the transition of Nif from anoxic to oxic environments is associated with a shift from posttranslational regulation in anaerobes to transcriptional regulation in obligate aerobes and facultative anaerobes. Given that fixed nitrogen typically limits ecosystem productivity, our observations further underscore the dynamic interplay between the evolution of Earth's oxygen, nitrogen, and carbon biogeochemical cycles. IMPORTANCE: Molybdenum nitrogenase (Nif), which catalyzes the reduction of dinitrogen to ammonium, has modulated the availability of fixed nitrogen in the biosphere since early in Earth's history. Nif emerged in an anaerobe and later diversified into aerobes. Here we show that the transition of Nif from anaerobic to aerobic metabolism was accompanied by both gene recruitment and gene loss, resulting in a substantial increase in the number of nif genes. While the observed increase in the number of nif genes is strongly correlated with adaptation to utilize O2 in metabolism, the increase is not correlated with any of the known O2 protective mechanisms. Rather, gene recruitment was likely a response to more efficiently regulate Nif under oxic conditions that favor protein turnover.


Assuntos
Archaea/genética , Bactérias/genética , Evolução Molecular , Molibdênio/metabolismo , Nitrogenase/genética , Nitrogenase/metabolismo , Aerobiose , Compostos de Amônio/metabolismo , Anaerobiose , Archaea/metabolismo , Bactérias/metabolismo , Biologia Computacional , Genoma Arqueal , Genoma Bacteriano , Nitrogênio/metabolismo , Oxirredução
2.
Science ; 317(5837): 523-6, 2007 Jul 27.
Artigo em Inglês | MEDLINE | ID: mdl-17656724

RESUMO

Only five bacterial phyla with members capable of chlorophyll (Chl)-based phototrophy are presently known. Metagenomic data from the phototrophic microbial mats of alkaline siliceous hot springs in Yellowstone National Park revealed the existence of a distinctive bacteriochlorophyll (BChl)-synthesizing, phototrophic bacterium. A highly enriched culture of this bacterium grew photoheterotrophically, synthesized BChls a and c under oxic conditions, and had chlorosomes and type 1 reaction centers. "Candidatus Chloracidobacterium thermophilum" is a BChl-producing member of the poorly characterized phylum Acidobacteria.


Assuntos
Bactérias Aeróbias/classificação , Bactérias Aeróbias/isolamento & purificação , Fontes Termais/microbiologia , Processos Fototróficos , Bactérias Aeróbias/fisiologia , Bactérias Aeróbias/ultraestrutura , Cromatóforos Bacterianos/ultraestrutura , Bacterioclorofilas/biossíntese , Biologia Computacional , Ecossistema , Genoma Bacteriano , Genômica , Dados de Sequência Molecular , Complexo de Proteína do Fotossistema I/análise , RNA Ribossômico 16S/genética , Temperatura , Wyoming
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