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B. Thamdrup (2000)
Bacterial Manganese and Iron Reduction in Aquatic Sediments
K. Pecher, S. Haderlein, R. Schwarzenbach (2002)
Reduction of polyhalogenated methanes by surface-bound Fe(II) in aqueous suspensions of iron oxides.Environmental science & technology, 36 8
B. Coughlin, A. Stone (1996)
Nonreversible Adsorption of Divalent Metal Ions (MnII, CoII, NiII, CuII, and PbII) onto Goethite: Effects of Acidification, FeII Addition, and Picolinic Acid Addition.Environmental science & technology, 29 9
D. Sherman (1987)
Molecular orbital (SCF-Xα-SW) theory of metal-metal charge transfer processes in mineralsPhysics and Chemistry of Minerals, 14
S. Childers, S. Ciufo, D. Lovley (2002)
Geobacter metallireducens accesses insoluble Fe(iii) oxide by chemotaxisNature, 416
H. Crosby, C. Johnson, E. Roden, B. Beard (2005)
Coupled Fe(II)-Fe(III) electron and atom exchange as a mechanism for Fe isotope fractionation during dissimilatory iron oxide reduction.Environmental science & technology, 39 17
J. Fredrickson, J. Zachara, D. Kennedy, H. Dong, T. Onstott, N. Hinman, Shu Li (1998)
BIOGENIC IRON MINERALIZATION ACCOMPANYING THE DISSIMILATORY REDUCTION OF HYDROUS FERRIC OXIDE BY A GROUNDWATER BACTERIUMGeochimica et Cosmochimica Acta, 62
I. Buerge, S. Hug (1999)
Influence of Mineral Surfaces on Chromium(VI) Reduction by Iron(II)Environmental Science & Technology, 33
A. S., Welch, L. B., Beard, M. C., Johnson, S. P., Braterman (2002)
Kinetic and equilibrium Fe isotope fractionation between aqueous Fe ( III ) and hematite
J. Amonette, D. Workman, D. Kennedy, J. Fruchter, Y. Gorby (2000)
Dechlorination of Carbon Tetrachloride by Fe(II) Associated with GoethiteEnvironmental Science & Technology, 34
L. Stookey (1970)
Ferrozine---a new spectrophotometric reagent for ironAnalytical Chemistry, 42
C. Archer, D. Vance (2004)
Coupled Fe and S isotope evidence for Archean microbial Fe(III) and sulfate reductionGeology, 34
S. Severmann, C. Johnson, B. Beard, J. McManus (2006)
The effect of early diagenesis on the Fe isotope compositions of porewaters and authigenic minerals in continental margin sedimentsGeochimica et Cosmochimica Acta, 70
E. Liger, L. Charlet, P. Cappellen (1999)
Surface catalysis of uranium(VI) reduction by iron(II)Geochimica et Cosmochimica Acta, 63
H. Pedersen, D. Postma, R. Jakobsen, O. Larsen (2005)
Fast transformation of iron oxyhydroxides by the catalytic action of aqueous Fe(II)Geochimica et Cosmochimica Acta, 69
S. Welch, B. Beard, C. Johnson, P. Braterman (2002)
Kinetic and equilibrium Fe isotope fractionation between aqueous Fe(II) and Fe(III)Geochimica et Cosmochimica Acta, 67
B. Beard, C. Johnson, J. Skulan, K. Nealson, Lea Cox, Henry Sun (2003)
Application of Fe isotopes to tracing the geochemical and biological cycling of FeChemical Geology, 195
A. Matthews, Helen Morgans-Bell, S. Emmanuel, H. Jenkyns, Y. Erel, L. Halicz (2004)
Controls on iron-isotope fractionation in organic-rich sediments (Kimmeridge Clay, Upper Jurassic, Southern England)Geochimica et Cosmochimica Acta, 68
C. Johnson, B. Beard (2006)
Fe isotopes: An emerging technique for understanding modern and ancient biogeochemical cyclesGsa Today, 16
J. Bowles (1992)
Iron Oxides in the LaboratoryMineralogical Magazine, 56
D. Lies, M. Hernández, A. Kappler, R. Mielke, J. Gralnick, D. Newman (2005)
Shewanella oneidensis MR-1 Uses Overlapping Pathways for Iron Reduction at a Distance and by Direct Contact under Conditions Relevant for BiofilmsApplied and Environmental Microbiology, 71
Roden Roden (2006)
Geochemical and microbiological controls on dissimilatory iron reductionComptes Rendus Geoscience, 338
M. Elsner, R. Schwarzenbach, S. Haderlein (2004)
Reactivity of Fe(II)-bearing minerals toward reductive transformation of organic contaminants.Environmental science & technology, 38 3
D. Lovley, D. Holmes, Kelly Nevin (1991)
Dissimilatory Fe(III) and Mn(IV) reduction.Advances in microbial physiology, 49
M. Vargas, K. Kashefi, E. Blunt-Harris, D. Lovley (1998)
Microbiological evidence for Fe(III) reduction on early EarthNature, 395
K. Konhauser, Dianne Newman, Andreas Kappler (2005)
The potential significance of microbial Fe(III) reduction during deposition of Precambrian banded iron formationsGeobiology, 3
Kelly Nevin, D. Lovley (2002)
Mechanisms for Fe(III) Oxide Reduction in Sedimentary EnvironmentsGeomicrobiology Journal, 19
Aaron Williams, M. Scherer (2004)
Spectroscopic evidence for Fe(II)-Fe(III) electron transfer at the iron oxide-water interface.Environmental science & technology, 38 18
J. Fredrickson, J. Zachara, D. Balkwill, D. Kennedy, Shu-mei Li, H. Kostandarithes, M. Daly, M. Romine, F. Brockman (2004)
Geomicrobiology of High-Level Nuclear Waste-Contaminated Vadose Sediments at the Hanford Site, Washington StateApplied and Environmental Microbiology, 70
E. Roden (2006)
Geomaterials (Mineralogy) Geochemical and microbiological controls on dissimilatory iron reduction
J. Davis, D. Kent (1990)
Surface complexation modeling in aqueous geochemistryReviews in Mineralogy & Geochemistry, 23
M. Staubwasser, F. Blanckenburg, R. Schoenberg (2006)
Iron isotopes in the early marine diagenetic iron cycleGeology, 34
T. Strathmann, A. Stone (2003)
Mineral surface catalysis of reactions between FeII and oxime carbamate pesticidesGeochimica et Cosmochimica Acta, 67
R. Kukkadapu, J. Zachara, Steven Smith, J. Fredrickson, Chongxuan Liu (2001)
Dissimilatory bacterial reduction of Al-substituted goethite in subsurface sedimentsGeochimica et Cosmochimica Acta, 65
K. Ludwig (1991)
ISOPLOT; a plotting and regression program for radiogenic-isotope data; version 2.53
E. Silvester, L. Charlet, C. Tournassat, A. Géhin, J. Greneche, E. Liger (2005)
Redox potential measurements and Mössbauer spectrometry of FeII adsorbed onto FeIII (oxyhydr)oxidesGeochimica et Cosmochimica Acta, 69
René Wiesli, B. Beard, C. Johnson (2004)
Experimental determination of Fe isotope fractionation between aqueous Fe(II), siderite and “green rust” in abiotic systemsChemical Geology, 211
Aaron Williams, K. Gregory, G. Parkin, M. Scherer (2005)
Hexahydro-1,3,5-trinitro-1,3,5-triazine transformation by biologically reduced ferrihydrite: evolution of Fe mineralogy, surface area, and reaction rates.Environmental science & technology, 39 14
G. Reguera, K. McCarthy, Teena Mehta, Julie Nicoll, M. Tuominen, D. Lovley (2005)
Extracellular electron transfer via microbial nanowiresNature, 435
C. Johnson, E. Roden, S. Welch, B. Beard (2005)
Experimental constraints on Fe isotope fractionation during magnetite and Fe carbonate formation coupled to dissimilatory hydrous ferric oxide reductionGeochimica et Cosmochimica Acta, 69
G. Icopini, A. Anbar, S. Ruebush, M. Tien, S. Brantley (2004)
Iron isotope fractionation during microbial reduction of iron: The importance of adsorptionGeology, 32
B. Beard, C. Johnson, Lea Cox, Henry Sun, K. Nealson, Carmen Aguilar (1999)
Iron isotope biosignatures.Science, 285 5435
S. Kerisit, K. Rosso (2006)
Computer simulation of electron transfer at hematite surfacesGeochimica et Cosmochimica Acta, 70
Kelly Nevin, D. Lovley (2000)
Lack of Production of Electron-Shuttling Compounds or Solubilization of Fe(III) during Reduction of Insoluble Fe(III) Oxide by Geobacter metallireducensApplied and Environmental Microbiology, 66
B. Bergquist, E. Boyle (2006)
Iron isotopes in the Amazon River system: Weathering and transport signaturesEarth and Planetary Science Letters, 248
B. Beard, C. Johnson, K. Damm, R. Poulson (2003)
Iron isotope constraints on Fe cycling and mass balance in oxygenated Earth oceansGeology, 31
K. Rosso, Dayle Smith, M. Dupuis (2003)
An ab initio model of electron transport in hematite (α-Fe2O3) basal planesJournal of Chemical Physics, 118
E. Roden, J. Zachara (1996)
Microbial Reduction of Crystalline Iron(III) Oxides: Influence of Oxide Surface Area and Potential for Cell GrowthEnvironmental Science & Technology, 30
F. Caccavo,, R. Blakemore, D. Lovley (1992)
A Hydrogen-Oxidizing, Fe(III)-Reducing Microorganism from the Great Bay Estuary, New HampshireApplied and Environmental Microbiology, 58
Sherman Sherman (1987)
Molecular orbital (SCF‐X‐ALPHA‐SW) theory of metal‐metal charge transfer processes in minerals 1. Application to Fe2+ to Fe3+ charge transfer and ‘electron delocalization’ in mixed‐valence iron oxides and silicatesPhysics and Chemistry of Minerals, 14
Y. Gorby, S. Yanina, J. McLean, K. Rosso, D. Moyles, A. Dohnalkova, T. Beveridge, I. Chang, Byung Kim, Kyung Kim, D. Culley, Samantha Reed, M. Romine, D. Saffarini, E. Hill, Liang Shi, Dwayne Elias, D. Kennedy, Grigoriy Pinchuk, Kazuya Watanabe, S. Ishii, B. Logan, K. Nealson, J. Fredrickson (2006)
Electrically conductive bacterial nanowires produced by Shewanella oneidensis strain MR-1 and other microorganisms.Proceedings of the National Academy of Sciences of the United States of America, 103 30
C. Hansel, S. Benner, P. Nico, S. Fendorf (2004)
Structural constraints of ferric (hydr)oxides on dissimilatory iron reduction and the fate of Fe(II)Geochimica et Cosmochimica Acta, 68
E. Tronc, J. Jolivet, J. Lefebvre, R. Massart (1985)
Ion adsorption and electron transfer in spinel-like iron oxide colloidsJournal of the Chemical Society, Faraday Transactions, 80
E. Tronc, P. Belleville, J. Jolivet, J. Livage (1992)
Transformation of ferric hydroxide into spinel by iron(II) adsorptionLangmuir, 8
Johnson Johnson, Beard Beard, Roden Roden, Newman Newman, Nealson Nealson (2004)
Isotopic constraints on biogeochemical cycling of FeGeochemistry of Non-Traditional Stable Isotopes, 55
C. Johnson, B. Beard, E. Roden, D. Newman, K. Nealson (2004)
Isotopic Constraints on Biogeochemical Cycling of FeReviews in Mineralogy & Geochemistry, 55
K. Yamaguchi, C. Johnson, B. Beard, H. Ohmoto (2005)
Biogeochemical cycling of iron in the Archean–Paleoproterozoic Earth: Constraints from iron isotope variations in sedimentary rocks from the Kaapvaal and Pilbara CratonsChemical Geology, 218
K. Rosso, J. Zachara, J. Fredrickson, Y. Gorby, Steven Smith (2003)
Nonlocal bacterial electron transfer to hematite surfacesGeochimica et Cosmochimica Acta, 67
U. Schwertmann, R. Cornell (1993)
Iron Oxides in LaboratorySoil Science, 156
ABSTRACT Microbial dissimilatory iron reduction (DIR) is widespread in anaerobic sediments and is a key producer of aqueous Fe(II) in suboxic sediments that contain reactive ferric oxides. Previous studies have shown that DIR produces some of the largest natural fractionations of stable Fe isotopes, although the mechanism of this isotopic fractionation is not yet well understood. Here we compare Fe isotope fractionations produced by similar cultures of Geobacter sulfurreducens strain PCA and Shewanella putrefaciens strain CN32 during reduction of hematite and goethite. Both species produce aqueous Fe(II) that is depleted in the heavy Fe isotopes, as expressed by a decrease in 56Fe/54Fe ratios or δ56Fe values. The low δ56Fe values for aqueous Fe(II) produced by DIR reflect isotopic exchange among three Fe inventories: aqueous Fe(II) (Fe(II)aq), sorbed Fe(II) (Fe(II)sorb), and a reactive Fe(III) component on the ferric oxide surface (Fe(III)reac). The fractionation in 56Fe/54Fe ratios between Fe(II)aq and Fe(III)reac was –2.95‰, and this remained constant over the timescales of the experiments (280 d). The Fe(II)aq – Fe(III)reac fractionation was independent of the ferric Fe substrate (hematite or goethite) and bacterial species, indicating a common mechanism for Fe isotope fractionation during DIR. Moreover, the Fe(II)aq – Fe(III)reac fractionation in 56Fe/54Fe ratios during DIR is identical within error of the equilibrium Fe(II)aq – ferric oxide fractionation in abiological systems at room temperatures. This suggests that the role of bacteria in producing Fe isotope fractionations during DIR lies in catalyzing coupled atom and electron exchange between Fe(II)aq and Fe(III)reac so that equilibrium Fe isotope partitioning occurs. Although Fe isotope fractionation between Fe(II)aq and Fe(III)reac remained constant, the absolute δ56Fe values for Fe(II)aq varied as a function of the relative proportions of Fe(II)aq, Fe(II)sorb, and Fe(III)reac during reduction. The temporal variations in these proportions were unique to hematite or goethite but independent of bacterial species. In the case of hematite reduction, the small measured Fe(II)aq – Fe(II)sorb fractionation of −0.30‰ in 56Fe/54Fe ratios, combined with the small proportion of Fe(II)sorb, produced insignificant (<0.05‰) isotopic effects due to sorption of Fe(II). Sorption of Fe(II) produced small, but significant effects during reduction of goethite, reflecting the higher proportion of Fe(II)sorb and larger measured Fe(II)aq – Fe(II)sorb fractionation of –0.87‰ in 56Fe/54Fe ratios for goethite. The isotopic effects of sorption on the δ56Fe values for Fe(II)aq were largest during the initial stages of reduction when Fe(II)sorb was the major ferrous Fe species during goethite reduction, on the order of 0.3 to 0.4‰. With continued reduction, however, the isotopic effects of sorption decreased to <0.2‰. These results provide insight into the mechanisms that produce Fe isotope fractionation during DIR, and form the basis for interpretation of Fe isotope variations in modern and ancient natural systems where DIR may have driven Fe cycling.
Geobiology – Wiley
Published: Jun 1, 2007
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