Microbial metal-binding mechanisms and their relation to nuclear waste disposal
- 1 April 1996
- journal article
- Published by Canadian Science Publishing in Canadian Journal of Microbiology
- Vol. 42 (4) , 392-400
- https://doi.org/10.1139/m96-055
Abstract
The cell surface polymers of microorganisms readily bind a variety of metal ions, which enables the organisms to immobilize potentially toxic metal ions before they encounter the plasma membrane. Under appropriate chemical conditions, bound metal ions can form a variety of minerals that may be of major geological importance. Many studies have shown the occurrence of metal binding and biomineralization in nature, but detailed knowledge of the underlying mechanisms is lacking. The microbial influence of this binding may be indirect, such as physicochemical influences on the solution chemistry, Eh, and pH; or direct, when it is determined by the type of organisms present, their energy metabolism, and the structural and chemical characteristics of the cell surface and extracellular polymers. Metal binding by bacterial cell surfaces has several implications in nuclear waste disposal including adsorption of soluble radionuclides. A detailed knowledge of the chemical mechanisms of metal interactions with the microbial cell surface will enhance our understanding of the geochemical environment within a nuclear waste disposal vault.Key words: biomineralization, radionuclide immobilization, biofilm, bacterial cell surface.Keywords
This publication has 41 references indexed in Scilit:
- Microbial communities in deep Canadian shield groundwaters—an in situ biofilm experimentGeomicrobiology Journal, 1995
- Uptake of metals by bacterial polysaccharidesJournal of Applied Bacteriology, 1993
- Citrate and urease-induced crystallization in synthetic and human urineUrological Research, 1993
- Heterogeneity as a concept in the interpretation of metal ion binding by humic substances. The binding of zinc by an aquatic fulvic acidAnalytica Chimica Acta, 1992
- Iron and graphite associated with fossil bacteria in chertChemical Geology, 1992
- Microbial dissolution and stabilization of toxic metals and radionuclides in mixed wastesCellular and Molecular Life Sciences, 1990
- Bioremediation of metal‐contaminated surface and groundwatersGeomicrobiology Journal, 1990
- Interaction of some metals between marine-origin humic acids and aqueous solutionsEnvironmental Research, 1986
- Site specificity of metallic ion binding in Escherichia coli K-12 lipopolysaccharideCanadian Journal of Microbiology, 1986
- Metal binding by the peptidoglycan sacculus of Escherichia coli K-12Canadian Journal of Microbiology, 1984