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Updated: Aug 19, 2026

Experimental Column Setup for Studying Anaerobic Biogeochemical Interactions Between Iron (Oxy)Hydroxides, Trace Elements, and Bacteria
Published on: December 19, 2017
Inhibition of bacterial perchlorate reduction by zero-valent iron
Joshua D Shrout1, Aaron G B Williams, Michelle M Scherer
1Department of Civil and Environmental Engineering, The University of Iowa, Iowa City, Iowa 52242, USA. joshua-shrout@uiowa.edu
Abstract:
Perchlorate was reduced by a mixed bacterial culture over a pH range of 7.0-8.9. Similar rates of perchlorate reduction were observed between pH 7.0 and 8.5, whereas significantly slower reduction occurred at pH 8.9. Addition of iron metal, Fe(0), to the mixed bacterial culture resulted in slower rates of perchlorate reduction. Negligible perchlorate reduction was observed under abiotic conditions with Fe(0) alone in a reduced anaerobic medium. The inhibition of perchlorate reduction observed in the presence of Fe(0) is in contrast to previous studies that have shown faster rates of contaminant reduction when bacteria and Fe(0) were combined compared to bacteria alone. The addition of Fe(0) resulted in a rise in pH, as well as precipitation of Fe minerals that appeared to encapsulate the bacterial cells. In experiments where pH was kept constant, the addition of Fe(0) still resulted in slower rates of perchlorate reduction suggesting that encapsulation of bacteria by Fe precipitates contributed to the inhibition of the bacterial activity independent of the effect of pH on bacteria. These results provide the first evidence linking accumulation of iron precipitates at the cell surface to inhibition of environmental contaminant degradation. Fe(0) was not a suitable amendment to stimulate perchlorate-degrading bacteria and the bacterial inhibition caused by precipitation of reduced Fe species may be important in other combined anaerobic bacterial-Fe(0) systems. Furthermore, the inhibition of bacterial activity by iron precipitation may have significant implications for the design of in situ bioremediation technologies for treatment of perchlorate plumes.
Insights
Iron metal (Fe(0)) addition slowed perchlorate reduction by bacteria. Iron precipitates likely inhibited bacterial activity, impacting bioremediation strategies for perchlorate contamination.
Area of Science:
- Environmental microbiology
- Bioremediation
- Geochemistry
Background:
- Perchlorate is a widespread environmental contaminant.
- Mixed bacterial cultures can reduce perchlorate under anaerobic conditions.
- Iron metal (Fe(0)) is often used to enhance contaminant reduction.
Purpose of the Study:
- To investigate the effect of iron metal (Fe(0)) on perchlorate reduction by a mixed bacterial culture.
- To determine if Fe(0) enhances or inhibits bacterial perchlorate degradation.
- To elucidate the mechanisms behind Fe(0)'s effect on bacterial activity.
Main Methods:
- Culturing a mixed bacterial consortium capable of perchlorate reduction.
- Conducting perchlorate reduction experiments across a pH range (7.0-8.9).
- Assessing the impact of Fe(0) addition on bacterial perchlorate reduction rates.
- Monitoring pH changes and iron mineral precipitation.
- Performing experiments with controlled pH to isolate effects.
Main Results:
- Perchlorate reduction occurred between pH 7.0-8.9, with slower rates at pH 8.9.
- Fe(0) addition significantly slowed perchlorate reduction rates.
- Fe(0) caused a rise in pH and precipitation of iron minerals, encapsulating bacterial cells.
- Inhibition of bacterial activity by Fe(0) persisted even when pH was controlled.
Conclusions:
- Fe(0) is not a suitable amendment for stimulating perchlorate-degrading bacteria.
- Iron precipitate accumulation on bacterial cell surfaces inhibits their activity.
- Bacterial inhibition by iron precipitation has significant implications for designing in situ bioremediation technologies for perchlorate plumes.
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