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Chemical and biological mobilization of Fe(III) in marsh sediments

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Abstract

Iron reduction in marine sulfitic environments may occur via a mechanism involving direct bacterial reduction with the use of hydrogen as an electron donor, direct bacterial reduction involving carbon turnover, or by indirect reduction where sulfide acts to reduce iron. In the presented experiments, the relative importance of direct and indirect mechanisms of iron reduction, and the contribution of these two mechanisms to overall carbon turnover has been evaluated in two marsh environments. Sediments collected from two Northeastern US salt marshes each having different Fe (III) histories were incubated with the addition of reactive iron (as amorphous oxyhydroxide). These sediments were either incubated alone or in conjunction with sodium molybdate. Production of both inorganic and organic pore water constituents and a calculation of net carbon production were used as measures to compare the relative importance of direct bacterial reduction and indirect bacterial reduction. Results indicate that in the environments tested, the majority of the reduced iron found results from indirect reduction mediated by hydrogen sulfide, a result of dissolution and precipitation phenomena, or is a result of direct bacterial reduction using hydrogen as an electron donor. Direct iron reduction plays a minor role in carbon turnover in these environments.

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References

  • Aller RA, Mackin JE & Cox TR Jr (1986) Digenesis of Fe and S in Amazon inner shelf muds: apparent dominance of Fe reduction and implications for the genesis of ironstones. Continental Shelf Research 6(12): 263–289

    Google Scholar 

  • Balashova VV & Zavarin GA (1980) Anaerobic reduction of ferric iron by hydrogen bacteria. Microbiol. 48: 635–639

    Google Scholar 

  • Bell PE, Mills AL & Herman JS (1987) Biogeochemical conditions favoring magnetite formation during anaerobic iron reduction. Appl. Environ. Microbiol. 53(11): 2610–2616

    Google Scholar 

  • Berner RA (1980) Early Digenesis: A Theoretical Approach. Princeton University Press. 241 pp

  • Canfield DE (1989) Reactive iron in marine sediments. Geochim. Cosmochim. Acta 53: 610–632

    Google Scholar 

  • Canfield DE & Berner RA (1986) Dissolution and pyritization of magnetite in anoxic marine sediments. Geochim. Cosmochim. Acta 51: 645–659

    Google Scholar 

  • Christensen D & Blackburn TH (1982) Turnover of14C labelled acetate in marine sediments. Mar. Biol. 7: 113–119

    Google Scholar 

  • Cline JD (1969) Spectrophotometric determination of hydrogen sulfide in natural waters. Limnol. Oceanogr. 14: 454–458

    Google Scholar 

  • Coleman ML, Hedrick DB, Lovley DR, White DC & Pye K (1993) Reduction of Fe (III) in sediments by sulfate-reducing bacteria. Nature 361: 436–438

    Google Scholar 

  • Davidson W (1979) Solubile inorganic ferrous complexes in natural waters. Geochim. Cosmochim. Acta 43: 1693–1696

    Google Scholar 

  • Edmond JM (1970) High precision determination of alkalinity and total carbon dioxide content of seawater by potentiometric titration. Deep Sea Res. 17: 737–750

    Google Scholar 

  • Emerson SL, Jacobs L & Tebo B (1981) The behavior of trace metals in marine anoxic waters: solubilities at the oxygen-hydrogen sulfide interface. In: Wong CS, Boyle E, Bruland KW, Burton JD & Goldberg ED (Eds) Trace metals in seawater (pp 579–608). Plenum NY

    Google Scholar 

  • Froelich PN, Klinkhammer GP, Bender ML, Luedtke NA, Heath GR, Cullen D, Dauphin P, Hammond D, Hartman P & Maynard V (1979) Early oxidation of organic matter in pelagic sediments of the eastern equatorial Atlantic: suboxic digenesis. Geochim. Cosmochim. Acta 43: 1075–1090

    Google Scholar 

  • Giblin AE & Howarth RW (1984) Porewater evidence for a dynamic sedimentary iron cycle in salt marshes. Limnol. Oceanog. 29(1): 47–63

    Google Scholar 

  • Hines ME, Lyons WB, Armstrong PB, Orem WH, Spencer MJ, Gaudette HE & Jones GE (1984) Seasonal metal remobilization in the sediments of Great Bay, New Hampshire. Mar. Chem. 15: 173–187

    Google Scholar 

  • Jacobson ME, Mackin JE & Capone DG (1987) Ammonium production in sediments inhibited with molybdate: implications for the sources of ammonium in anoxic marine sediments. Appl. Environ. Microbiol. 53: 2435–2439

    Google Scholar 

  • Jones JG, Gardner S & Simon BM (1983) Bacterial reduction of ferric iron in a stratified eutrophic lake. J. Gen. Microbiol. 129: 131–139

    Google Scholar 

  • Jones JG (1983) A note on the isolation and enumeration of bacteria which deposit and reduce ferric iron. J. Appl. Bacteriol. 54: 305–310

    Google Scholar 

  • Jones JG, Gardner S & Simon BM (1984) Reduction of ferric iron by heterotrophic bacteria in lake sediments. J. Gen. Microbiol. 130: 45–51

    Google Scholar 

  • Kelly C & Schindler DW (1984) Sulfate reduction in freshwater sediments. Biogeochemistry 1: 63–78

    Google Scholar 

  • Kuivila KM & Murray JW (1984) Organic matter digenesis in freshwater sediments: the alkalinity and total CO2 balance and methane production in the sediments of Lake Washington. Limnol. Oceanogr. 29: 1218–1230

    Google Scholar 

  • Lovley DR (1991) Dissimilatory Fe (III) and Mn (IV) reduction. Microbial Reviews 55(2): 259–287

    Google Scholar 

  • Lovley Dr, Phillips EJP & Lonergan DL (1989) Hydrogen and formate coupled to dissimilatory reduction of iron or manganese by Alteromonas putrefaciens. Appl. Environ. Microbiol. 55: 700–706

    Google Scholar 

  • Lovley DR & Phillips EJP (1988) Novel mode of microbial energy metabolism: organic carbon oxidation coupled to dissimilatory reduction of iron or manganese. Appl. Environ. Microbiol. 54: 1472–1480

    Google Scholar 

  • Lovley Dr & Phillips EJP (1987) Competitive mechanisms for inhibition of sulfate reduction and methane production in the zone of ferric iron reduction in sediments. Appl. Environ. Microbiol. 53: 2636–2641

    Google Scholar 

  • Lovley Dr & Phillips EJP (1986) Organic mineralization with reduction of ferric iron in anaerobic sediments. Appl. Environ. Microbiol. 51: 683–689

    Google Scholar 

  • Luther GW III (1991) Pyrite synthesis via polysulfide compounds. Geochim. Cosmochim. Acta. 55: 2839–2849

    Google Scholar 

  • Luther GW III, Kostka JE, Church TM, Sulzberger B & Stumm W (1992) Seasonal iron cycling in the salt-marsh sedimentary environment: the importance of ligand complexes with Fe (II) and Fe (III) in the dissolution of Fe (III) minerals and pyrite, respectively. Mar. Chem. 40: 81–103

    Google Scholar 

  • Mackin JE, Aller RC & Ullman WJ (1988) The effects of iron reduction and nonsteady-state digenesis on iodine, ammonium, and boron distributions in sediments from the Amazon continental shelf. Continental Shelf Research 8(4): 363–386

    Google Scholar 

  • Mackin JE (1986) Control of dissolved Al distributions in marine sediments by reconstitution reactions: experimental evidence leading to a unified theory. Geochim. Cosmochim. Acta 50: 207–314

    Google Scholar 

  • Mackin JE & Aller RA (1984) Digenesis of dissolved Aluminum in organic-rich sediments. Geochim. Cosmochim. Acta 48: 229–313

    Google Scholar 

  • Michelson A, Jacobson ME, Scranton MI & Mackin JE (1989) Modeling the distribution of acetate in anoxic estuarine sediments. Limnol. Oceanogr. 34: 747–757

    Google Scholar 

  • Millero FJ (1979) The thermodynamics of the carbonate system in seawater. Geochim. Cosmochim. Acta 43: 1651–1661

    Google Scholar 

  • Millero FJ (1986) The thermodynamics and kinetics of the hydrogen sulfide system in natural waters. Marine Chemistry 18: 121–147

    Google Scholar 

  • Novelli PC, Michelson AR, Scranton MI, Banta GT, Hobie JE & Howarth RW (1988) Hydrogen and acetate cycling in two sulfate reducing sediments: Buzzards Bay and Town Cove, Ma. Geochim. Cosmochim. Acta 42: 209–214

    Google Scholar 

  • Oremland RS & Capone DG (1988) Use of ‘specific inhibitors’ in biogeochemistry and microbial ecology. Advances in Microbial Ecology 10: 285–383. Plenum Publishing NY

    Google Scholar 

  • Presley BJ (1971) Tecyhniques for analyzing interstitial water samples. Part I: determination of selected minor and major inorganic constituents. Initial Rept. Deep Sea Drill. Prij. 7(2): 1749–1755

    Google Scholar 

  • Rickard DT (1975) Kinetics and mechanisms of pyrite formation at low temperatures. Am. J. Sci. 275: 636–652

    Google Scholar 

  • Rickard DT (1974) Kinetics and mechanisms of the sulfidation of geothite. Am. J. Sci. 275: 636–652

    Google Scholar 

  • Sansone FJ, Andrews CC & Okamoto MY (1987) Adsorption of short chain organic acids onto marine sediment surfaces. Geochim. Cosmochim. Acta 51: 1889–1896

    Google Scholar 

  • Soloranzo L (1969) Determination of ammonia in natural waters by the phenol hypochlorite method. Limnol. Oceanogr. 14: 799–801

    Google Scholar 

  • Sorensen J (1982) Reduction of ferric iron in anaerobic, marine sediments and interaction with reduction of nitrate and sulfate. Appl. Environ. Microbiol. 43 (2): 319–324

    Google Scholar 

  • Stookey LL (1970) Ferrozine — a new spectrometric reagent for iron. Anal. Chem. 42: 779–781

    Google Scholar 

  • Swider KT & Mackin JE (1989) Transformation of sulfur compounds in marsh-flat sediments. Geochim. Cosmochim. Acta 53: 2311–2323

    Google Scholar 

  • Trefry JH & Presley BJ (1982) Manganese fluxes from the Mississippi Delta sediments. Geochim. Cosmochim. Acta 46: 1715–1726

    Google Scholar 

  • Tugel B, Hines ME & Jones GE (1986) Microbial iron reduction by enrichment cultures isolated from estuarine sediments. Appl. Environ. Microbiol. 52(5): 1167–1172

    Google Scholar 

  • Woodwell GM & Pecan EV (1973) Flax Pond: an estuarine marsh. Brookhaven Nat. Lab Publ. #50397

  • Zehnder AJB (1988) Biology of anaerobic microorganisms. Wiley-Interscience & Sons New York, chichester, Brisbane, toronto, Singapore 871 pp

    Google Scholar 

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Jacobson, M.E. Chemical and biological mobilization of Fe(III) in marsh sediments. Biogeochemistry 25, 41–60 (1994). https://doi.org/10.1007/BF00000511

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