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World J Microbiol Biotechnol. 1995 May;11(3):257-65. doi: 10.1007/BF00367095.
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.
许多微生物具有内在的能力,可以降解由于污染和自然活动而进入环境的有毒有机化合物。这些化合物的显著降解可能需要多年的时间,因此经常需要考虑可以加速这一过程的方法。已经有一些关于有毒废物增强生物降解的实验室和现场条件下的研究。本文回顾了增强氰化物生物降解的前景。与实验室规模的过程相比,氰化物生物修复的现场规模过程的报道非常少。实施这种现场规模的降解需要生物学、水文学、地质学、化学和土木工程的投入。正在出现一个概念框架,可以用来开发有毒有机废物生物修复的新工艺。就氰化物生物降解而言,该框架包括鉴定微生物、确定降解的最佳条件、确定参与氰化物降解的代谢途径、鉴定和定位相关基因、鉴定适用于实际应用的微生物菌株以及开发实际的工程工艺。本综述介绍了在氰化物生物降解的这些方面取得的进展。它还考察了生物氰化物降解的现有现场应用,并为未来的研究提出了建议。