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PMID: 17400748 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Insights into the autotrophic CO2 fixation pathway of the archaeon Ignicoccus hospitalis: comprehensive analysis of the central carbon metabolism.

Journal of bacteriology ·Vol. 189 ·No. 11 ·2007-06-00 ·Pages 4108-19

Jahn U, Huber H, Eisenreich W, Hügler M, Fuchs G

Abstract

Ignicoccus hospitalis is an autotrophic hyperthermophilic archaeon that serves as a host for another parasitic/symbiotic archaeon, Nanoarchaeum equitans. In this study, the biosynthetic pathways of I. hospitalis were investigated by in vitro enzymatic analyses, in vivo (13)C-labeling experiments, and genomic analyses. Our results suggest the operation of a so far unknown pathway of autotrophic CO(2) fixation that starts from acetyl-coenzyme A (CoA). The cyclic regeneration of acetyl-CoA, the primary CO(2) acceptor molecule, has not been clarified yet. In essence, acetyl-CoA is converted into pyruvate via reductive carboxylation by pyruvate-ferredoxin oxidoreductase. Pyruvate-water dikinase converts pyruvate into phosphoenolpyruvate (PEP), which is carboxylated to oxaloacetate by PEP carboxylase. An incomplete citric acid cycle is operating: citrate is synthesized from oxaloacetate and acetyl-CoA by a (re)-specific citrate synthase, whereas a 2-oxoglutarate-oxidizing enzyme is lacking. Further investigations revealed that several special biosynthetic pathways that have recently been described for various archaea are operating. Isoleucine is synthesized via the uncommon citramalate pathway and lysine via the alpha-aminoadipate pathway. Gluconeogenesis is achieved via a reverse Embden-Meyerhof pathway using a novel type of fructose 1,6-bisphosphate aldolase. Pentosephosphates are formed from hexosephosphates via the suggested ribulose-monophosphate pathway, whereby formaldehyde is released from C-1 of hexose. The organism may not contain any sugar-metabolizing pathway. This comprehensive analysis of the central carbon metabolism of I. hospitalis revealed further evidence for the unexpected and unexplored diversity of metabolic pathways within the (hyperthermophilic) archaea.

MeSH Terms
2-Aminoadipic Acid/chemistry,metabolism Acetyl Coenzyme A/metabolism Archaea/metabolism Autotrophic Processes Carbon/metabolism Carbon Dioxide/metabolism Carbon Isotopes/metabolism Citrate (si)-Synthase/metabolism Citric Acid/chemistry,metabolism Fructose-Bisphosphate Aldolase/chemistry,metabolism Gluconeogenesis Glycolysis Hexosephosphates/chemistry,metabolism Isoleucine/metabolism Lysine/metabolism Magnetic Resonance Spectroscopy Malates/chemistry,metabolism Models, Biological Molecular Structure Oxaloacetic Acid/chemistry,metabolism Pentosephosphates/chemistry,metabolism Phosphoenolpyruvate/chemistry,metabolism Phosphoenolpyruvate Carboxylase/chemistry,metabolism Pyruvate Synthase/metabolism Pyruvates/chemistry,metabolism
Chemicals
Carbon Isotopes Hexosephosphates Malates Pentosephosphates Pyruvates Isoleucine Carbon Dioxide 2-Aminoadipic Acid Citric Acid Oxaloacetic Acid Acetyl Coenzyme A Phosphoenolpyruvate Carbon Pyruvate Synthase Citrate (si)-Synthase Phosphoenolpyruvate Carboxylase Fructose-Bisphosphate Aldolase citramalate Lysine
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Jahn Ulrike
Lehrstuhl Mikrobiologie und Archaeenzentrum, Universität Regensburg, Universitätsstrasse 31, D-93053 Regensburg, Germany.
Huber Harald
Eisenreich Wolfgang
Hügler Michael
Fuchs Georg
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Article Info
Journal
Journal of bacteriology
Abbr.
J Bacteriol
ISSN
0021-9193
Published
2007-06-00
Epub
2007-00-30
Pages
4108-19
Language
English
Region
United States
NLM ID
2985120R
PMCID
PMC1913412
Subset
IM
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