93 research outputs found

    Molecular characterization of the genes encoding the tungsten-containing aldehyde ferredoxin oxidoreductase from Pyrococcus furiosus and formaldehyde ferredoxin oxidoreductase from Thermococcus litoralis

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    The hyperthermophilic archaea Pyrococcus furiosus and Thermococcus litoralis contain the tungstoenzymes aldehyde ferredoxin oxidoreductase, a homodimer, and formaldehyde ferredoxin oxidoreductase, a homotetramer. herein we report the cloning and sequencing of the P. furiosus gene aor (605 residues; M_r, 66,630) and the T. litoralis gene for (621 residues; M_r, 68,941)

    The Complete Genome Sequence of Thermoproteus tenax: A Physiologically Versatile Member of the Crenarchaeota

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    Here, we report on the complete genome sequence of the hyperthermophilic Crenarchaeum Thermoproteus tenax (strain Kra 1, DSM 2078(T)) a type strain of the crenarchaeotal order Thermoproteales. Its circular 1.84-megabase genome harbors no extrachromosomal elements and 2,051 open reading frames are identified, covering 90.6% of the complete sequence, which represents a high coding density. Derived from the gene content, T. tenax is a representative member of the Crenarchaeota. The organism is strictly anaerobic and sulfur-dependent with optimal growth at 86 degrees C and pH 5.6. One particular feature is the great metabolic versatility, which is not accompanied by a distinct increase of genome size or information density as compared to other Crenarchaeota. T. tenax is able to grow chemolithoautotrophically (CO2/H-2) as well as chemoorganoheterotrophically in presence of various organic substrates. All pathways for synthesizing the 20 proteinogenic amino acids are present. In addition, two presumably complete gene sets for NADH:quinone oxidoreductase (complex I) were identified in the genome and there is evidence that either NADH or reduced ferredoxin might serve as electron donor. Beside the typical archaeal A(0)A(1)-ATP synthase, a membrane-bound pyrophosphatase is found, which might contribute to energy conservation. Surprisingly, all genes required for dissimilatory sulfate reduction are present, which is confirmed by growth experiments. Mentionable is furthermore, the presence of two proteins (ParA family ATPase, actin-like protein) that might be involved in cell division in Thermoproteales, where the ESCRT system is absent, and of genes involved in genetic competence (DprA, ComF) that is so far unique within Archaea

    Tungsten-containing aldehyde ferredoxin oxidoreductases

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    Oxidation of Sulfur and Inorganic Sulfur Compounds in Acidianus ambivalens

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    Methylierung von Lysin in Crenarchaeota : verbreiteter Mechanismus zur Stabilisierung von Proteinen

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    Hyperthermophile Mikroorganismen – darunter viele Mitglieder der Archaea – haben Temperaturoptima von 80°C und darüber. Es gibt mehr als eine Antwort auf die Frage, wie ihre Proteine vor Denaturierung geschützt sind: Vermehrte Salzbrücken und polare Kontakte, Kompaktierung, verminderte Flexibilität und Vergrößerung deshydrophoben cores können zur Stabilisierung beitragen. C. H. Botting et al. (Archaea (2010) DOI:10.1155/2010/106341) zeigten jetzt, dass Methylierung von Lysin an der ε-Aminogruppe ein weiterer Mechanismus sein kann.

    Metabolism of inorganic sulfur compounds in Archaea

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