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PMID: 1886521 Published · ppublish English Journal Article Review

Dissimilatory Fe(III) and Mn(IV) reduction.

Microbiological reviews ·Vol. 55 ·No. 2 ·1991-06-00 ·Pages 259-87

Lovley DR

Abstract

The oxidation of organic matter coupled to the reduction of Fe(III) or Mn(IV) is one of the most important biogeochemical reactions in aquatic sediments, soils, and groundwater. This process, which may have been the first globally significant mechanism for the oxidation of organic matter to carbon dioxide, plays an important role in the oxidation of natural and contaminant organic compounds in a variety of environments and contributes to other phenomena of widespread significance such as the release of metals and nutrients into water supplies, the magnetization of sediments, and the corrosion of metal. Until recently, much of the Fe(III) and Mn(IV) reduction in sedimentary environments was considered to be the result of nonenzymatic processes. However, microorganisms which can effectively couple the oxidation of organic compounds to the reduction of Fe(III) or Mn(IV) have recently been discovered. With Fe(III) or Mn(IV) as the sole electron acceptor, these organisms can completely oxidize fatty acids, hydrogen, or a variety of monoaromatic compounds. This metabolism provides energy to support growth. Sugars and amino acids can be completely oxidized by the cooperative activity of fermentative microorganisms and hydrogen- and fatty-acid-oxidizing Fe(III) and Mn(IV) reducers. This provides a microbial mechanism for the oxidation of the complex assemblage of sedimentary organic matter in Fe(III)- or Mn(IV)-reducing environments. The available evidence indicates that this enzymatic reduction of Fe(III) or Mn(IV) accounts for most of the oxidation of organic matter coupled to reduction of Fe(III) and Mn(IV) in sedimentary environments. Little is known about the diversity and ecology of the microorganisms responsible for Fe(III) and Mn(IV) reduction, and only preliminary studies have been conducted on the physiology and biochemistry of this process.

MeSH Terms
Bacteria/metabolism Electron Transport Ferric Compounds/metabolism Fungi/metabolism Geological Phenomena Geology Manganese/metabolism Oxidation-Reduction Soil Microbiology Water Microbiology
Chemicals
Ferric Compounds Manganese
Authors & Affiliations
1 authors, click to expand affiliations / ORCID
Lovley D R
Water Resources Division, U.S. Geological Survey, Reston, Virginia 22092.
References (63)
63 references, click to expand
  1. Occurrence of magnetic bacteria in soil.
    Nature. 1990 Jan 11;343(6254):161-3 PMID: 2296306
  2. Bacteriology of Manganese Nodules: I. Bacterial Action on Manganese in Nodule Enrichments.
    Appl Microbiol. 1963 Jan;11(1):15-9 PMID: 16349626
  3. Reduction of iron and synthesis of protoheme by Spirillum itersonii and other organisms.
    J Bacteriol. 1977 Feb;129(2):815-20 PMID: 190208
  4. Regulation of Dissimilatory Fe(III) Reduction Activity in Shewanella putrefaciens.
    Appl Environ Microbiol. 1990 Sep;56(9):2811-7 PMID: 16348289
  5. Cell identity resolved.
    Nature. 1989 Jul 13;340(6229):106 PMID: 2739733
  6. Bacteriology of manganese nodules: III. Reduction of MnO(2) by two strains of nodule bacteria.
    Appl Microbiol. 1968 May;16(5):695-702 PMID: 16349802
  7. Selection, characterization and iron-reducing capacity of nitrate reductaseless (nit-) mutants of iron-reducing bacteria.
    Z Allg Mikrobiol. 1970;10(1):55-62 PMID: 4989280
  8. Effects of medium composition on cell pigmentation, cytochrome content, and ferric iron reduction in a Pseudomonas sp. isolated from crude oil.
    Can J Microbiol. 1982 Aug;28(8):989-92 PMID: 6291733
  9. Iron and sulfur in the pre-biologic ocean.
    Precambrian Res. 1985;28:205-22 PMID: 11539662
  10. Purification and some properties of sulfur:ferric ion oxidoreductase from Thiobacillus ferrooxidans.
    J Bacteriol. 1987 Nov;169(11):4916-22 PMID: 3667519
  11. A serum bottle modification of the Hungate technique for cultivating obligate anaerobes.
    Appl Microbiol. 1974 May;27(5):985-7 PMID: 4598231
  12. Novel mode of microbial energy metabolism: organic carbon oxidation coupled to dissimilatory reduction of iron or manganese.
    Appl Environ Microbiol. 1988 Jun;54(6):1472-80 PMID: 16347658
  13. Anaerobic microbial dissolution of transition and heavy metal oxides.
    Appl Environ Microbiol. 1988 Apr;54(4):1009-14 PMID: 16347595
  14. Synthesis of an Iron-Oxidizing System during Growth of Thiobacillus ferrooxidans on Sulfur-Basal Salts Medium.
    Appl Environ Microbiol. 1988 Jan;54(1):150-152 PMID: 16347521
  15. Inhibitor studies of dissimilative Fe(III) reduction by Pseudomonas sp. strain 200 ("Pseudomonas ferrireductans")
    Appl Environ Microbiol. 1986 Aug;52(2):281-9 PMID: 2428308
  16. Respiration-linked proton translocation coupled to anaerobic reduction of manganese(IV) and iron(III) in Shewanella putrefaciens MR-1.
    J Bacteriol. 1990 Nov;172(11):6232-8 PMID: 2172208
  17. Reduction of ferric compounds by soil bacteria.
    J Gen Microbiol. 1954 Aug;11(1):1-6 PMID: 13192294
  18. Electron Transport in the Dissimilatory Iron Reducer, GS-15.
    Appl Environ Microbiol. 1991 Mar;57(3):867-70 PMID: 16348451
  19. Biochemistry of acetate catabolism in anaerobic chemotrophic bacteria.
    Annu Rev Microbiol. 1989;43:43-67 PMID: 2679359
  20. Hydrogen and Formate Oxidation Coupled to Dissimilatory Reduction of Iron or Manganese by Alteromonas putrefaciens.
    Appl Environ Microbiol. 1989 Mar;55(3):700-6 PMID: 16347876
  21. Bacterial manganese reduction and growth with manganese oxide as the sole electron acceptor.
    Science. 1988 Jun 3;240(4857):1319-21 PMID: 17815852
  22. Magnetotactic bacteria.
    Annu Rev Microbiol. 1982;36:217-38 PMID: 6128956
  23. Effect of nitrate on reduction of ferric iron by a bacterium isolated from crude oil.
    Can J Microbiol. 1981 Jul;27(7):692-7 PMID: 7197577
  24. Ferric iron reduction by sulfur- and iron-oxidizing bacteria.
    Appl Environ Microbiol. 1976 Oct;32(4):567-71 PMID: 825043
  25. Availability of ferric iron for microbial reduction in bottom sediments of the freshwater tidal potomac river.
    Appl Environ Microbiol. 1986 Oct;52(4):751-7 PMID: 16347168
  26. Amino acid degradation by anaerobic bacteria.
    Annu Rev Biochem. 1981;50:23-40 PMID: 6791576
  27. Methanogens: reevaluation of a unique biological group.
    Microbiol Rev. 1979 Jun;43(2):260-96 PMID: 390357
  28. Metabolic diversity among the dissimilatory sulfate-reducing bacteria. Albert Jan Kluyver memorial lecture.
    Antonie Van Leeuwenhoek. 1989 Aug;56(2):127-38 PMID: 2679377
  29. Bacteriology of manganese nodules. VI. Fate of copper, nickel, cobalt, and iron during bacterial and chemical reduction of the manganese (IV).
    Z Allg Mikrobiol. 1973;13(1):39-48 PMID: 4707931
  30. Magnetite and magnetotaxis in microorganisms.
    Bioelectromagnetics. 1989;10(3):223-37 PMID: 2665749
  31. Microbial manganese reduction by enrichment cultures from coastal marine sediments.
    Appl Environ Microbiol. 1985 Aug;50(2):491-7 PMID: 16346865
  32. Surface changes in mild steel coupons from the action of corrosion-causing bacteria.
    Appl Environ Microbiol. 1981 Mar;41(3):766-74 PMID: 16345735
  33. Bacteriology of manganese nodules. IV. Induction of an MnO2-reductase system in a marine bacillus.
    Appl Microbiol. 1970 Jun;19(6):966-72 PMID: 5456014
  34. Organic matter mineralization with reduction of ferric iron in anaerobic sediments.
    Appl Environ Microbiol. 1986 Apr;51(4):683-9 PMID: 16347032
  35. Competitive mechanisms for inhibition of sulfate reduction and methane production in the zone of ferric iron reduction in sediments.
    Appl Environ Microbiol. 1987 Nov;53(11):2636-41 PMID: 16347483
  36. Biogeochemical Conditions Favoring Magnetite Formation during Anaerobic Iron Reduction.
    Appl Environ Microbiol. 1987 Nov;53(11):2610-6 PMID: 16347480
  37. Reduction of ferric iron by L-lactate and DL-glycerol-3-phosphate in membrane preparations from Staphylococcus aureus and interactions with the nitrate reductase system.
    J Bacteriol. 1978 May;134(2):585-9 PMID: 207671
  38. Suboxic diagenesis in banded iron formations.
    Nature. 1984 May 24;309:340-2 PMID: 11541981
  39. Manganese reduction by a marine Bacillus species.
    J Bacteriol. 1986 Jul;167(1):30-4 PMID: 3013837
  40. Characterization of the bacterial magnetosome membrane.
    J Bacteriol. 1988 Feb;170(2):834-41 PMID: 3123464
  41. Rapid assay for microbially reducible ferric iron in aquatic sediments.
    Appl Environ Microbiol. 1987 Jul;53(7):1536-40 PMID: 16347384
  42. ANAEROBIC GROWTH OF FUSARIUM OXYSPORUM.
    J Bacteriol. 1964 Jun;87:1309-16 PMID: 14188707
  43. Enzymatic reduction of iron oxide by fungi.
    Appl Microbiol. 1969 Jul;18(1):41-3 PMID: 16349855
  44. Bacterial mechanisms of gley formation in artificially submerged soil.
    Nature. 1970 Jan 3;225(5227):103 PMID: 5410190
  45. Active transport by membrane vesicles from anaerobically grown Escherichia coli energized by electron transfer to ferricyanide and chlorate.
    Eur J Biochem. 1976 Oct 1;69(1):35-44 PMID: 791648
  46. Was the Archaean biosphere upside down?
    Nature. 1987 Oct 22;329:710-2 PMID: 11539735
  47. Millimeter-scale variations of stable isotope abundances in carbonates from banded iron-formations in the Hamersley Group of Western Australia.
    Econ Geol. 1985;80:270-82 PMID: 11539027
  48. Requirement for a Microbial Consortium To Completely Oxidize Glucose in Fe(III)-Reducing Sediments.
    Appl Environ Microbiol. 1989 Dec;55(12):3234-6 PMID: 16348080
  49. Electron transport components of the MnO2 reductase system and the location of the terminal reductase in a marine Bacillus.
    Appl Environ Microbiol. 1976 Jun;31(6):977-85 PMID: 59577
  50. Evaluation of iron-reducing bacteria in soil and the physiological mechanism of iron-reduction in Aerobacter aerogenes.
    Z Allg Mikrobiol. 1968;8(5):441-3 PMID: 4916832
  51. Natural history of the obstructed rabbit appendix: observations with radiography, sonography, and CT.
    AJR Am J Roentgenol. 1987 Feb;148(2):281-4 PMID: 3541546
  52. Acetate catabolism in the dissimilatory iron-reducing isolate GS-15.
    J Bacteriol. 1991 Apr;173(8):2704-6 PMID: 1901574
  53. Reduction of iron oxide minerals by a marine Bacillus.
    Antonie Van Leeuwenhoek. 1970;36(3):317-27 PMID: 5312509
  54. Microbial iron reduction by enrichment cultures isolated from estuarine sediments.
    Appl Environ Microbiol. 1986 Nov;52(5):1167-72 PMID: 16347216
  55. Respiratory chain linked ferricy anide reduction drives active transport in membrane vesicles from Bacillus subtilis.
    FEBS Lett. 1975 Dec 1;60(1):11-5 PMID: 179862
  56. Reactive iron in marine sediments.
    Geochim Cosmochim Acta. 1989;53:619-32 PMID: 11539783
  57. Effects of seawater cations and temperature on manganese dioxide-reductase activity in a marine Bacillus.
    Appl Microbiol. 1974 Nov;28(5):785-92 PMID: 4441063
  58. Anaerobic Oxidation of Toluene, Phenol, and p-Cresol by the Dissimilatory Iron-Reducing Organism, GS-15.
    Appl Environ Microbiol. 1990 Jun;56(6):1858-64 PMID: 16348226
  59. Reduction of ferric iron in anaerobic, marine sediment and interaction with reduction of nitrate and sulfate.
    Appl Environ Microbiol. 1982 Feb;43(2):319-24 PMID: 16345937
  60. Iron respiration-driven proton translocation in aerobic bacteria.
    J Bacteriol. 1986 Aug;167(2):729-31 PMID: 3015890
  61. Rates of microbial metabolism in deep coastal plain aquifers.
    Appl Environ Microbiol. 1990 Jun;56(6):1865-74 PMID: 16348227
  62. Ferrisiderophore reductase activity associated with an aromatic biosynthetic enzyme complex in Bacillus subtilis.
    J Bacteriol. 1981 Nov;148(2):527-33 PMID: 6795181
  63. Deposition of molybdenum and uranium along the major ocean ridge systems.
    Nature. 1971 Jan 22;229(5282):250-1 PMID: 16059182
Article Info
Journal
Microbiological reviews
Abbr.
Microbiol Rev
ISSN
0146-0749
Published
1991-06-00
Pages
259-87
Language
English
Region
United States
NLM ID
7806086
PMCID
PMC372814
Subset
IM
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