Microbial reduction of Fe(III) and sorption/precipitation of Fe(II) on Shewanella putrefaciens strain CN32

被引:137
作者
Liu, CG [1 ]
Zachara, JM [1 ]
Gorby, YA [1 ]
Szecsody, JE [1 ]
Brown, CF [1 ]
机构
[1] Pacific NW Natl Lab, Richland, WA 99352 USA
关键词
D O I
10.1021/es0015139
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The influence of Fe(II) on the dissimilatory bacterial reduction of an Fe(III) aqueous complex (Fe(III)-citrate(aq))was investigated using Shewanella putrefaciens strain CN32. The sorption of Fe(II) on CN32 followed a Langmuir isotherm. Least-squares fitting gave a maximum sorption capacity of Q(max) = 4.19 x 10(-3) mol/10(12) cells (1.19 mol/ m(2) of cell surface area) and an affinity coefficient of log K = 3.29. The growth yield of CN32 with respect to Fe(III)(aq) reduction showed a linear trend with an average value of 5.24 (+/-0.12) x 10(9) cells/mmol of Fe(III). The reduction of Fe(III)(aq) by CN32 was described by Monod kinetics with respect to the electron acceptor concentration, Fe(III)(aq), with a half-saturation constant (K-s) of 29 (+/-3) mM and maximum growth rate (mu (max)):of 0.32 (+/-0.02) h(-1) However, the pretreatment of CN32 with Fe(II)(aq) significantly inhibited the reduction of Fe(III)(aq), resulting in a lag phase of about 3-30 h depending on initial cell concentrations. Lower initial cell concentration led to longer lag phase duration, and higher cell concentration led to a shorter one. Transmission electron microscopy and energy dispersive spectroscopy revealed that many cells carried surface precipitates of Fe mineral phases (valence unspecified) during the lag phase. These precipitates disappeared after the cells recovered from the lag phase. The cell inhibition and recovery mechanisms from Fe(II)-induced mineral precipitation were not identified by this study, but several alternatives were discussed. A modified Monod model incorporating a lag phase, Fe(II) adsorption, and aqueous complexation reactions was able to describe the experimental results of mirobial Fe(III)(aq) reduction and cell growth when cells were pretreated with Fe(ll)(aq).
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页码:1385 / 1393
页数:9
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