Oxygen isotope biogeochemistry of pore water sulfate in the deep biosphere:: Dominance of isotope exchange reactions with ambient water during microbial sulfate reduction (ODP Site 1130)

被引:110
|
作者
Wortmann, Ulrich G.
Chernyavsky, Boris
Bernasconi, Stefano M.
Brunner, Benjamin
Boettcher, Michael E.
Swart, Peter K.
机构
[1] Univ Toronto, Dept Geol, Geobiol Isotope Lab, Toronto, ON M5S 3B1, Canada
[2] ETH, Inst Geol, CH-8092 Zurich, Switzerland
[3] CALTECH, Jet Propuls Lab, Pasadena, CA 91125 USA
[4] Leibniz Inst Balt Sea Res, D-18119 Warnemunde, Germany
[5] Univ Miami, Rosenstiel Sch Marine & Atmospher Sci, Miami, FL 33149 USA
基金
加拿大自然科学与工程研究理事会;
关键词
D O I
10.1016/j.gca.2007.06.033
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
Microbially mediated sulfate reduction affects the isotopic composition of dissolved and solid sulfur species in marine sediments. Experiments and field data show that the delta O-18(SO4)2- composition is also modified in the presence of sulfate-reducing microorganisms. This has been attributed either to a kinetic isotope effect during the reduction of sulfate to sulfite, cell-internal exchange reactions between enzymatically-activated sulfate (APS), and/or sulfite with cytoplasmic water. The isotopic fingerprint of these processes may be further modified by the cell-external reoxidation of sulfide to elemental sulfur, and the subsequent disproportionation to sulfide and sulfate or by the oxidation of sulfite to sulfate. Here we report delta O-18(SO4)2- values from interstitial water samples of ODP Leg 182 (Site 1130) and provide the mathematical framework to describe the oxygen isotope fractionation of sulfate during microbial sulfate reduction. We show that a purely kinetic model is unable to explain our delta(OSO42-)-O-18 data, and that the data are well explained by a model using oxygen isotope exchange reactions. We propose that the oxygen isotope exchange occurs between APS and cytoplasmic water, and/or between sulfite and adenosine monophosphate (AMP) during APS formation. Model calculations show that cell external reoxidation of reduced sulfur species would require up to 3000 mol/m(3) of an oxidant at ODP Site 1130, which is incompatible with the sediment geochemical data. In addition, we show that the volumetric fluxes required to explain the observed delta O-18(SO4)2- data are on average 14 times higher than the volumetric sulfate reduction rates (SRR) obtained from inverse modeling of the porewater data. The ratio between the gross sulfate flux into the microbes and the net sulfate flux through the microbes is depth invariant, and independent of sulfide concentrations. This suggests that both fluxes are controlled by cell density and that cell-specific sulfate reduction rates remain constant with depth. (C) 2007 Elsevier Ltd. All rights reserved.
引用
收藏
页码:4221 / 4232
页数:12
相关论文
共 14 条
  • [1] OXYGEN ISOTOPE EXCHANGE BETWEEN SULFATE AND WATER DURING BACTERIAL REDUCTION OF SULFATE
    FRITZ, P
    BASHARMAL, GM
    DRIMMIE, RJ
    IBSEN, J
    QURESHI, RM
    CHEMICAL GEOLOGY, 1989, 79 (02) : 99 - 105
  • [2] Microbial sulfate reduction in deep sediments of ODP Leg 181:: Evidence from stable sulfur isotope fractionation and pore water modeling
    Böttcher, ME
    Khim, BK
    Suzuki, A
    Gehre, M
    Wortmann, U
    Brumsack, H
    GEOCHIMICA ET COSMOCHIMICA ACTA, 2002, 66 (15A) : A95 - A95
  • [3] Sulfur isotope evidence for microbial sulfate reduction in altered oceanic basalts at ODP Site 801
    Rouxel, Olivier
    Ono, Shuhei
    Alt, Jeff
    Rumble, Douglas
    Ludden, John
    EARTH AND PLANETARY SCIENCE LETTERS, 2008, 268 (1-2) : 110 - 123
  • [4] Hypersulfidic deep biosphere indicates extreme sulfur isotope fractionation during single-step microbial sulfate reduction
    Wortmann, UG
    Bernasconi, SM
    Böttcher, ME
    GEOLOGY, 2001, 29 (07) : 647 - 650
  • [5] Microbial sulfate reduction in deep sediments of the Southwest Pacific (ODP Leg 181, Sites 1119-1125):: evidence from stable sulfur isotope fractionation and pore water modeling
    Böttcher, ME
    Khim, BK
    Suzuki, A
    Gehre, M
    Wortmann, UG
    Brumsack, HJ
    MARINE GEOLOGY, 2004, 205 (1-4) : 249 - 260
  • [6] Oxygen isotope effects during microbial sulfate reduction: applications to sediment cell abundances
    Bertran, E.
    Waldeck, A.
    Wing, B. A.
    Halevy, I.
    Leavitt, W. D.
    Bradley, A. S.
    Johnston, D. T.
    ISME JOURNAL, 2020, 14 (06): : 1508 - 1519
  • [7] Oxygen isotope effects during microbial sulfate reduction: applications to sediment cell abundances
    E. Bertran
    A. Waldeck
    B. A. Wing
    I. Halevy
    W. D. Leavitt
    A. S. Bradley
    D. T. Johnston
    The ISME Journal, 2020, 14 : 1508 - 1519
  • [8] OXYGEN ISOTOPE EXCHANGE-RATE BETWEEN DISSOLVED SULFATE AND WATER AT HYDROTHERMAL TEMPERATURES
    CHIBA, H
    SAKAI, H
    GEOCHIMICA ET COSMOCHIMICA ACTA, 1985, 49 (04) : 993 - 1000
  • [10] No oxygen isotope exchange between water and APS-sulfate at surface temperature: Evidence from quantum chemical modeling and triple-oxygen isotope experiments
    Kohl, Issaku E.
    Asatryan, Rubik
    Bao, Huiming
    GEOCHIMICA ET COSMOCHIMICA ACTA, 2012, 95 : 106 - 118