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Speciation and Bioavailability Measurements of Environmental Plutonium Using Diffusion in Thin Films
Published on: November 9, 2015
Siderophore mediated plutonium accumulation by Microbacterium flavescens (JG-9)
S G John1, C E Ruggiero, L E Hersman
1Chemistry Division, C-SIC, Bioscience Division, B-N1, and Theoretical Division, T-10, Los Alamos National Laboratory, Los Alamos, New Mexico 87544, USA.
Environmental Science & Technology
|August 2, 2001
Summary
Microbacterium flavescens bacteria actively uptake iron and plutonium when complexed with desferrioxamine-B (DFOB). This suggests plutonium-siderophore complexes may impact plutonium
Area of Science:
- Microbiology
- Environmental Science
- Radiochemistry
Background:
- Siderophores are high-affinity iron-chelating molecules produced by microorganisms.
- Understanding metal-microbe interactions is crucial for environmental remediation and risk assessment.
- Desferrioxamine-B (DFOB) is a well-characterized siderophore involved in iron transport.
Purpose of the Study:
- To investigate the uptake of plutonium (Pu) and uranium (U) by the soil bacterium Microbacterium flavescens (JG-9) mediated by the siderophore DFOB.
- To determine if M. flavescens can utilize Pu-DFOB and U-DFOB complexes, similar to Fe-DFOB.
- To elucidate the mechanisms and competition involved in the uptake of metal-DFOB complexes.
Main Methods:
- Bacterial cultures of M. flavescens (JG-9) were incubated with various metal complexes: U(VI)-DFOB, Fe(III)-DFOB, and Pu(IV)-DFOB.
- Uptake was quantified by measuring the accumulation of metals within metabolically active and inactive bacterial cells.
- Competitive uptake experiments were performed by co-incubating Fe(III)-DFOB and Pu(IV)-DFOB.
Main Results:
- M. flavescens actively took up Fe(III)-DFOB and Pu(IV)-DFOB, but not U(VI)-DFOB or NTA complexes.
- Uptake of both Fe(III)-DFOB and Pu(IV)-DFOB required metabolically active bacteria.
- Fe(III)-DFOB and Pu(IV)-DFOB mutually inhibited each other's uptake, indicating shared transport pathways.
- Pu uptake was significantly slower and lower in cumulative amount compared to Fe uptake.
Conclusions:
- M. flavescens possesses a transport system that recognizes and internalizes Pu(IV)-DFOB, similar to Fe(III)-DFOB.
- This suggests that microbial iron uptake systems may play a role in the environmental mobility and bioavailability of plutonium.
- The findings indicate that siderophore complexes of tetravalent metals can be recognized by Fe-siderophore uptake proteins in bacteria.
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