HR: 13:40h
AN: B42C-01 INVITED [PDF]
TI: Thermodynamic Versus Surface Area Control of Microbial Fe(III) Oxide Reduction Kinetics
AU: * Roden, E E
EM: eroden@bsc.as.ua.edu
AF: The University of Alabama, Department of Biological Sciences, Tuscaloosa, AL 35487-0206 United States
AB:
Recent experimental studies of synthetic and natural Fe(III) oxide reduction permit development of conceptual and
quantitative models of enzymatic Fe(III) oxide reduction at circumneutral pH that can be compared to and contrasted with
established models of abiotic mineral dissolution. The findings collectively support a model for controls on enzymatic
reduction that differs fundamentally from those applied to abiotic reductive dissolution as a result of two basic phenomena:
(1) the relatively minor influence of oxide mineralogical and thermodynamic properties on surface area-normalized rates of
enzymatic reduction compared to abiotic reductive dissolution; and (2) the major limitation which sorption and/or surface
precipitation of biogenic Fe(II) on residual oxide and Fe(III)-reducing bacterial cell surfaces poses to enzymatic electron
transfer in the presence of excess electron donor. Parallel studies with two major Fe(III)-reducing bacteria genera
(Shewanella and Geobacter) lead to common conclusions regarding the importance of these phenomena in regulating the rate and
long-term extent of Fe(III) oxide reduction. Although the extent to which these phenomena can be traced to underlying
kinetic vs. thermodynamic effects cannot be resolved with current information, models in which rates of enzymatic reduction
are limited kinetically by the abundance of "available" oxide surface sites (as controlled by oxide surface area and the
abundance of surface-bound Fe(II)) provide an adequate macroscopic description of controls on the initial rate and long-term
extent of oxide reduction. In some instances, thermodynamic limitation posed by the accumulation of aqueous reaction
end-products (i.e. Fe(II) and alkalinity) must also be invoked to explain observed long-term patterns of reduction. In
addition, the abundance of Fe(III)-reducing microorganisms plays an important role in governing rates of reduction and needs
to be considered in models of Fe(III) reduction in nonsteady-state systems, e.g. subsurface environments in which Fe(III)
reduction is stimulated by contamination with organics or for the purposes of metal/radionuclide bioremediation.
DE: 0400 Biogeosciences
DE: 1045 Low-temperature geochemistry
SC: Biogeosciences [B]
MN: 2003 Fall Meeting