journal article May 01, 2000

Methane production by the sulfate-reducing bacteriumDesulfosarcina variabilis

Microbiology Vol. 69 No. 3 pp. 277-280 · Microbiology Society
View at Publisher Save 10.1007/bf02756733
Topics

No keywords indexed for this article. Browse by subject →

References
17
[1]
Rozanova, E.P. and Nazina, T.N., Sulfate-reducing Bac-teria: Systematics and Metabolism,Usp. Mikrobiol., Moscow: Nauka, 1989, pp. 191–226.
[2]
Gibson, G.R., Physiology and Ecology of the Sulfate-reducing Bacteria,J. Appl. Bacteriol., 1990, vol. 71, pp. 769–797. 10.1111/j.1365-2672.1990.tb01575.x
[3]
Postgate, J.R., Methane as a Minor Product of Pyruvate Metabolism by Sulfate-reducing and Other Bacteria,J. Gen. Microbiol., 1969, vol. 57, pp. 293–302. 10.1099/00221287-57-3-293
[4]
Schauder, R., Eikmanns, B., Thauer, R.K., Widdel, E, and Fuchs, G., Acetate Oxidation to CO2 in Anaerobic Bacteria via a Novel Pathway Not Involving Reactions of the Citric Acid Cycle,Arch. Microbiol, 1986, vol. 145, pp. 162–172. 10.1007/bf00446775
[5]
Balch, W.E., Fox, G.E., Magrum, L.J., and Wolfe, R.S., Methanogens: Reevalution of a Unique Biological Group,Microbiol. Rev., 1979, vol. 43, pp. 260–296. 10.1128/mr.43.2.260-296.1979
[6]
Yang, S.T. and Okos, M.R., Kinetic Study Mathematical Modeling of Methanogenesis of Acetate Using Pure Cul-tures of Methanogens,Biotechnol. Bioeng., 1987, vol. 30, pp. 661–667. 10.1002/bit.260300510
[7]
Belyaev, S.S. and Ivanov, M.V., Radioisotopic Method for Evaluation of Bacterial Methanogenesis,Mikrobi-ologiya, 1975, vol. 44, pp. 166–168.
[8]
Veber, V.V. and Turkel’taub, N.M., Formation of Gas-eous Hydrocarbons in Young Marine Sediments,Vopr. Sedimentol., Moscow: Gostoptekhizdat, 1960.
[9]
Oremland, R.S., Microbial Formation of Ethane in Anoxic Estuarine Sediments,Appl. Environ. Microbiol, 1981, vol. 42, pp. 122–129. 10.1128/aem.42.1.122-129.1981
[10]
Vainshtein, M.B., Namsaraev, B.B., Samarkin, V.A., and Bol’shakov, A.M., Evaluation of Hydrocarbon-produc-ing Microflora,Prikl. Biokhim. Mikrobiol, 1989, vol. 25, pp. 707–714.
[11]
Bagaeva, T.V., Ability of Sulfate-reducing Bacteria of Different Taxonomic Groups to Synthesize Extracellular Hydrocarbons,Mikrvbiobgiya, 1997, vol. 66, pp. 796–799.
[12]
Widdel, F.,Anaeroberabbau von Fettsauren und Ben-zoesauren durch neu isolerte arten sulfatreduzierander Bakterien, Gottingen: Univ. Gott., 1980.
[13]
Bradford, M.M., A Rapid and Sensitive Method for the Quantitation of Microgram Quantities of Protein Utiliz-ing the Principle of Protein-Dye Binding,Anal Bio-chem., 1976, vol. 72, pp. 248–254.
[14]
Cline, J.D., Spectrophotometric Determination of Hydro-gen Sulfide in Natural Waters,Limnol. Oceanogr., 1969, vol. 14, pp. 444–458. 10.4319/lo.1969.14.3.0454
[15]
Zeikus, J.G., Weiner, P.J., Nelson, D.R., and Daniels, L., Bacterial Methanogenesis: Acetate as a Methane Precur-sor in Pure Culture,Arch. Microbiol, 1975, vol. 104, pp. 129–134. 10.1007/bf00447312
[16]
Pfennig, N., Anrecherungskulturenfur rote und grune Schwefelbakterien,Zentralbl Bakteriol Parasitenkd., 1965, vol. 1, pp. 179–189.
[17]
Postgate, J.R., Media for Sulfur Bacteria,Lab. Pract., 1966, vol. 15, pp. 1239–1244.
Metrics
0
Citations
17
References
Details
Published
May 01, 2000
Vol/Issue
69(3)
Pages
277-280
License
View
Cite This Article
V. A. Shcherbakova, M. B. Vainshtein (2000). Methane production by the sulfate-reducing bacteriumDesulfosarcina variabilis. Microbiology, 69(3), 277-280. https://doi.org/10.1007/bf02756733
Related

You May Also Like

Quantification of biofilm structures by the novel computer program comstat

Arne Heydorn, Alex Toftgaard Nielsen · 2000

1,918 citations

Metals, minerals and microbes: geomicrobiology and bioremediation

Geoffrey Michael Gadd · 2010

1,633 citations

R Factor Transfer in Rhizobium leguminosarum

J. E. BERINGER · 1974

894 citations