Biological cyanide destruction mediated by microorganisms
- 1 May 1995
- journal article
- Published by Springer Nature in World Journal of Microbiology and Biotechnology
- Vol. 11 (3) , 257-265
- https://doi.org/10.1007/bf00367095
Abstract
Many microorganisms have an inherent capacity to degrade the toxic organic compounds that enter the environment as a result of pollution and natural activities. Significant degradation of these compounds may take many years and it is frequently necessary to consider methods that can accelerate this process. There have been several demonstrations of enhanced biological degradation of toxic wastes, both in the laboratory and under field conditions. The prospects for enhanced biological cyanide degradation are reviewed. Compared with bench-scale processes, there are very few reports of field-scale processes for cyanide bioremediation. The implementation of such field-scale degradation requires inputs from biology, hydrology, geology, chemistry and civil engineering. A conceptual framework is emerging that can be adapted to develop new processes for bioremediation of toxic organic wastes. In terms of cyanide biodegradation, this framework incorporates identification of microbes, determination of the optimal conditions for degradation, establishment of the metabolic pathways involved in cyanide degradation, identification and localization of the genes involved, identification of suitable microbial strains for practical application and development of practical engineering processes. The present review addresses the progress that has been made in each of these aspects of cyanide biodegradation. It also examines the existing field applications of biological cyanide degradation and makes recommendations for future research.Keywords
This publication has 45 references indexed in Scilit:
- Determination of cyanide in manufactured gas plant purifier wastesEnvironmental Technology, 1991
- The cyanide-metabolizing enzyme rhodanese in human nasal respiratory mucosaToxicology and Applied Pharmacology, 1991
- Biological detoxification of precious metal processing wastewatersGeomicrobiology Journal, 1990
- The advantages of biodegradation of cyanidesJOM, 1989
- Cyanide oxygenase and cyanase activities ofPseudomonas fluorescensNCIMB 11764FEMS Microbiology Letters, 1989
- The growth of a cyanide-utilising strain ofPseudomonas fluorescensin liquid culture on nickel cyanide as a source of nitrogenFEMS Microbiology Letters, 1987
- The conversion of cyanide to ammonia by extracts of a strain ofPseudomonas fluorescensthat utilizes cyanide as a source of nitrogen for growthFEMS Microbiology Letters, 1983
- Cyanide-resistant growth inCitrobacter Freundiiand otherEnterobacteriaceaeFEMS Microbiology Letters, 1979
- DNA synthesis in Escherichia coli in the presence of cyanideJournal of Molecular Biology, 1971
- The synthesis of the induced enzyme, “cyanase”, in E. coliBiochimica et Biophysica Acta, 1960