Метаногенез (Russian Wikipedia)

Analysis of information sources in references of the Wikipedia article "Метаногенез" in Russian language version.

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asm.org

aem.asm.org

doi.org

dx.doi.org

  • Y. Liu, W. B. Whitman: Metabolic, phylogenetic, and ecological diversity of the methanogenic archaea. In: Annals of the New York Academy of Sciences. Band 1125, 2008. PMID 18378594, doi:10.1196/annals.1419.019, S. 171–189.
  • Watkins, AJ. et al. (2012): Choline and N,N-dimethylethanolamine as direct substrates for methanogens. In: Appl Environ Microbiol. 78(23); 8298–8303; PMID 23001649; doi:10.1128/AEM.01941-12; PDF Архивная копия от 22 декабря 2012 на Wayback Machine
  • Watkins, AJ. et al. (2014): Glycine betaine as a direct substrate for methanogens (Methanococcoides spp.). In: Appl Environ Microbiol. 80(1); 289–293; PMID 24162571; doi:10.1128/AEM.03076-13; PDF Архивная копия от 23 января 2014 на Wayback Machine.
  • U. Deppenmeier, V. Müller: Life close to the thermodynamic limit: how methanogenic archaea conserve energy. In: Results and Problems in Cell Differentiation. Band 45, 2008. PMID 17713742, doi:10.1007/400_2006_026, S. 123–152.
  • Rudolf K. Thauer, Anne Kristin Kaster, Meike Goenrich, Michael Schick, Takeshi Hiromoto, Seigo Shima: Hydrogenases from methanogenic archaea, nickel, a novel cofactor, and H2 storage. In: Annual Review of Biochemistry. Bd. 79, 2010, S. 507–536, PMID 20235826, doi:10.1146/annurev.biochem.030508.152103.
  • U. Deppenmeier: The unique biochemistry of methanogenesis. In: Progress in Nucleic Acid Research and Molecular Biology. Band 71, 2002. PMID 12102556, doi:10.1016/S0079-6603(02)71045-3, S. 223–283
  • Ferry, JG. (2010): How to make a living by exhaling methane. In: Annu Rev Microbiol. 64; 453–473; PMID 20528692; doi:10.1146/annurev.micro.112408.134051
  • Fournier, G. (2009): Horizontal gene transfer and the evolution of methanogenic pathways. In: Methods Mol Biol. 532; 163—179; PMID 19271184; doi:10.1007/978-1-60327-853-9_9.
  • E. Oelgeschläger, M. Rother: Carbon monoxide-dependent energy metabolism in anaerobic bacteria and archaea. In: Archives of Microbiology. Band 190(3), 2008. PMID 18575848, doi:10.1007/s00203-008-0382-6, S. 257—269.
  • U. Deppenmeier: Redox-driven proton translocation in methanogenic Archaea. In: Cellular and Molecular Life Sciences. Band 59 (9), 2002. PMID 12440773, doi:10.1007/s00018-002-8526-3, S. 1513—1533.
  • Rudolf K. Thauer, Anne Kristin Kaster, Henning Seedorf, Wolfgang Buckel, Reiner Hedderich: Methanogenic archaea: ecologically relevant differences in energy conservation. In: Nature Reviews Microbiology. Band 6, Nr. 8, 2008, PMID 18587410, doi:10.1038/nrmicro1931, S. 579—591.
  • S. Sakai et al.: Methanocella arvoryzae sp. nov., a hydrogenotrophic methanogen isolated from rice field soil. In: International Journal of Systematic and Evolutionary Microbiology. Band 60(Pt 12), 2010. PMID 20097796, doi:10.1099/ijs.0.020883-0, S. 2918—2923.
  • K. Paul et al.: 'Methanoplasmatales': Thermoplasmatales-related archaea in termite guts and other environments are the seventh order of methanogens. In: Applied and Environmental Microbiology. 2012, PMID 23001661, doi:10.1128/AEM.02193-12.
  • Martin Kruger, Anke Meyerdierks, Frank Oliver Glockner, Rudolf Amann, Friedrich Widdel, Michael Kube, Richard Reinhardt, Jorg Kahnt, Reinhard Bocher, Rudolf K. Thauer, Seigo Shima. A conspicuous nickel protein in microbial mats that oxidize methane anaerobically (англ.) // Nature : journal. — 2003. — Vol. 426, no. 6968. — P. 878—881. — doi:10.1038/nature02207..
  • Sofya K. Garushyants, Marat D. Kazanov, Mikhail S. Gelfand. Horizontal gene transfer and genome evolution in Methanosarcina (англ.) // BioMed Central[англ.] : journal. — 2015. — Vol. 15, no. 1. — P. 1—14. — doi:10.1186/s12862-015-0393-2.
  • R. K. Dhaked, P. Singh, L. Singh: Biomethanation under psychrophilic conditions. In: Waste Manag. Band 30 (12), 2010. PMID 2072413, doi:10.1016/j.wasman.2010.07.015, S. 2490—2496.

nih.gov

ncbi.nlm.nih.gov

  • Y. Liu, W. B. Whitman: Metabolic, phylogenetic, and ecological diversity of the methanogenic archaea. In: Annals of the New York Academy of Sciences. Band 1125, 2008. PMID 18378594, doi:10.1196/annals.1419.019, S. 171–189.
  • Watkins, AJ. et al. (2012): Choline and N,N-dimethylethanolamine as direct substrates for methanogens. In: Appl Environ Microbiol. 78(23); 8298–8303; PMID 23001649; doi:10.1128/AEM.01941-12; PDF Архивная копия от 22 декабря 2012 на Wayback Machine
  • Watkins, AJ. et al. (2014): Glycine betaine as a direct substrate for methanogens (Methanococcoides spp.). In: Appl Environ Microbiol. 80(1); 289–293; PMID 24162571; doi:10.1128/AEM.03076-13; PDF Архивная копия от 23 января 2014 на Wayback Machine.
  • Fricke, WF. et al. (2006): The genome sequence of Methanosphaera stadtmanae reveals why this human intestinal archaeon is restricted to methanol and H2 for methane formation and ATP synthesis. In: J Bacteriol. 188(2); 642–658; PMID 16385054; PMC 1347301.
  • U. Deppenmeier, V. Müller: Life close to the thermodynamic limit: how methanogenic archaea conserve energy. In: Results and Problems in Cell Differentiation. Band 45, 2008. PMID 17713742, doi:10.1007/400_2006_026, S. 123–152.
  • Lupa, B. et al. (2008): Formate-dependent H2 production by the mesophilic methanogen Methanococcus maripaludis. In: Applied and Environmental Microbiology. Bd. 74, Nr. 21, 2008, S. 6584–6590, PMID 18791018; PDF Архивная копия от 26 июня 2009 на Wayback Machine (freier Volltextzugriff, engl.).
  • Rudolf K. Thauer, Anne Kristin Kaster, Meike Goenrich, Michael Schick, Takeshi Hiromoto, Seigo Shima: Hydrogenases from methanogenic archaea, nickel, a novel cofactor, and H2 storage. In: Annual Review of Biochemistry. Bd. 79, 2010, S. 507–536, PMID 20235826, doi:10.1146/annurev.biochem.030508.152103.
  • U. Deppenmeier: The unique biochemistry of methanogenesis. In: Progress in Nucleic Acid Research and Molecular Biology. Band 71, 2002. PMID 12102556, doi:10.1016/S0079-6603(02)71045-3, S. 223–283
  • Ferry, JG. (2010): How to make a living by exhaling methane. In: Annu Rev Microbiol. 64; 453–473; PMID 20528692; doi:10.1146/annurev.micro.112408.134051
  • Fournier, G. (2009): Horizontal gene transfer and the evolution of methanogenic pathways. In: Methods Mol Biol. 532; 163—179; PMID 19271184; doi:10.1007/978-1-60327-853-9_9.
  • Deppenmeier U., Lienard T., Gottschalk G. Novel reaction involved in energy conservation by methanogenic archaea. (англ.) // FEBS Lett : журнал. — 1999. — Vol. 457, no. 3. — P. 291—7. — PMID 10471795.
  • Murakami E., Deppenmeier U., Ragsdale S.W. Characterization of the intramolecular electron transfer pathway from 2-hydroxyphenazine to the heterodisulfide reductase from Methanosarcina thermophila. (англ.) // J Biol Chem : журнал. — 2001. — Vol. 276, no. 4. — P. 2432—9. — PMID 11034998.
  • E. Oelgeschläger, M. Rother: Carbon monoxide-dependent energy metabolism in anaerobic bacteria and archaea. In: Archives of Microbiology. Band 190(3), 2008. PMID 18575848, doi:10.1007/s00203-008-0382-6, S. 257—269.
  • Martin, W. und Russell, MJ. (2007): On the origin of biochemistry at an alkaline hydrothermal vent. In: Philos Trans R Soc Lond B Biol Sci. 362(1486); 1887—1925; PMID 17255002; PMC 2442388.
  • U. Deppenmeier: Redox-driven proton translocation in methanogenic Archaea. In: Cellular and Molecular Life Sciences. Band 59 (9), 2002. PMID 12440773, doi:10.1007/s00018-002-8526-3, S. 1513—1533.
  • Rudolf K. Thauer, Anne Kristin Kaster, Henning Seedorf, Wolfgang Buckel, Reiner Hedderich: Methanogenic archaea: ecologically relevant differences in energy conservation. In: Nature Reviews Microbiology. Band 6, Nr. 8, 2008, PMID 18587410, doi:10.1038/nrmicro1931, S. 579—591.
  • S. Sakai et al.: Methanocella paludicola gen. nov., sp. nov., a methane-producing archaeon, the first isolate of the lineage 'Rice Cluster I', and proposal of the new archaeal order Methanocellales ord. nov. In: International Journal of Systematic and Evolutionary Microbiology. Band 58 (Pt 4), 2008. PMID 18398197, S. 929—936. PDF (недоступная ссылка) (freier Volltextzugriff, engl.).
  • S. Sakai et al.: Methanocella arvoryzae sp. nov., a hydrogenotrophic methanogen isolated from rice field soil. In: International Journal of Systematic and Evolutionary Microbiology. Band 60(Pt 12), 2010. PMID 20097796, doi:10.1099/ijs.0.020883-0, S. 2918—2923.
  • K. Paul et al.: 'Methanoplasmatales': Thermoplasmatales-related archaea in termite guts and other environments are the seventh order of methanogens. In: Applied and Environmental Microbiology. 2012, PMID 23001661, doi:10.1128/AEM.02193-12.
  • S. Gribaldo, C. Brochier-Armanet: The origin and evolution of Archaea: a state of the art. In: Philosophical Transactions of the Royal Society B: Biological Sciences. Band 361 (1470), 2006. PMID 16754611, PMC 1578729, S,1007-1022.
  • R. K. Dhaked, P. Singh, L. Singh: Biomethanation under psychrophilic conditions. In: Waste Manag. Band 30 (12), 2010. PMID 2072413, doi:10.1016/j.wasman.2010.07.015, S. 2490—2496.

sgmjournals.org

ijs.sgmjournals.org

  • S. Sakai et al.: Methanocella paludicola gen. nov., sp. nov., a methane-producing archaeon, the first isolate of the lineage 'Rice Cluster I', and proposal of the new archaeal order Methanocellales ord. nov. In: International Journal of Systematic and Evolutionary Microbiology. Band 58 (Pt 4), 2008. PMID 18398197, S. 929—936. PDF (недоступная ссылка) (freier Volltextzugriff, engl.).

uni-marburg.de

archiv.ub.uni-marburg.de

web.archive.org

wikipedia.org

en.wikipedia.org

  • Gregory P. Fournier, J. Peter Gogarten. Evolution of acetoclastic methanogenesis in Methanosarcina via horizontal gene transfer from cellulolytic Clostridia (англ.) // American Society for Microbiology[англ.] : journal. — 2008. — Vol. 190, no. 3. — P. 1124—1127.
  • Sofya K. Garushyants, Marat D. Kazanov, Mikhail S. Gelfand. Horizontal gene transfer and genome evolution in Methanosarcina (англ.) // BioMed Central[англ.] : journal. — 2015. — Vol. 15, no. 1. — P. 1—14. — doi:10.1186/s12862-015-0393-2.