Obligately anaerobic bacteria in biotechnology
- 1 August 1994
- journal article
- Published by Springer Nature in Applied Biochemistry and Biotechnology
- Vol. 48 (2) , 75-106
- https://doi.org/10.1007/bf02796164
Abstract
New obligately anaerobic bacteria are being discovered at an accelerating rate and it is becoming very evident that the diversity of anoxic biotransformations has been greatly underestimated. Furthermore, among contemporary anaerobes there are many that thrive in extreme environments including, for example, an impressive array of both archaebacterial and eubacterial hyperthermophiles. Free energy for growth and reproduction may be conserved not only via fermentations but also by anoxygenic photophosphorylation and other modes of creating transmembrane proton potential. Thus forms of anaerobic respiration in which various inorganic oxidants (or indeed carbon dioxide) serve as terminal electron acceptors have greatly extended the natural habitats in which such organisms may predominate. Anaerobic bacteria are, however, often found in nature as members of close microbial communities (consortia) that, although sustained by syntrophic and other relations between component species, are liable to alter their composition and character in response to environmental changes, e.g., availability of terminal oxidants. It follows that the biotechnological exploitation of obligately anaerobic bacteria must be informed by knowledge both of their biochemical capacities and of their normal environmental roles. It is against this background that illustrative examples of the activities of anaerobic bacteria are considered under three heads: Biodegradation/Bioremediation, with special reference to the anaerobic breakdown of aromatic and/or halogenated organic substances; Biosynthesis/Bioproduction, encompassing normal and modified fermentations; and Biotransformations, accomplished by whole or semipermeabilized organisms or by enzymes derived therefrom, with particular interest attaching to the production of chiral compounds by a number of procedures, including electromicrobial reduction.Keywords
This publication has 206 references indexed in Scilit:
- In situ bioremediation of chlorinated solventsCurrent Opinion in Biotechnology, 1993
- Topography of methanogenic subpopulations in a microbial consortium adapting to thermophilic conditionsJournal of General Microbiology, 1991
- The use of a two-liquid-phase electron removal system for culture of proton-reducing bacteriaJournal of Microbiological Methods, 1991
- Desulfohalobium retbaense gen. nov., sp. nov., a Halophilic Sulfate-Reducing Bacterium from Sediments of a Hypersaline Lake in SenegalInternational Journal of Systematic and Evolutionary Microbiology, 1991
- Lactate dehydrogenase from the extreme thermophile Thermotoga maritimaEuropean Journal of Biochemistry, 1990
- Isolation and characterization of an anaerobic benzoate-degrading spore-forming sulfate-reducing bacterium, Desulfotomaculum sapomandens sp. nov.FEMS Microbiology Letters, 1985
- Chiral Compounds Synthesized by Biocatalytic Reductions [New Synthetic Methods (51)]Angewandte Chemie International Edition in English, 1985
- Anaerobic degradation of 3,4,5-trimethoxybenzoate by a defined mixed culture ofAcetobacterium woodii, Pelobacter acidigallici, andDesulfobacter postgateiFEMS Microbiology Letters, 1985
- The stereochemistry of the formation of the methyl group in the glutamate mutase‐catalysed reaction in Clostridium tetanomorphumFEBS Letters, 1984
- The Methane Fermentation of Organic Acids and Carbohydrates1,2Journal of the American Chemical Society, 1934