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

Biodegradation
|February 25, 2005
PubMed

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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