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Biodegradation of the cyclic nitramine explosives RDX, HMX, and CL-20

机译:环状硝胺炸药RDX,HMX和CL-20的生物降解

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摘要

Cyclic nitramine explosives are synthesized globally mainly as military munitions, and their use has resulted in environmental contamination. Several biodegradation pathways have been proposed, and these are based mainly on end-product characterization because many of the metabolic intermediates are hypothetical and unstable in water. Biodegradation mechanisms for cyclic nitramines include (a) formation of a nitramine free radical and loss of nitro functional groups, (b) reduction of nitro functional groups, (c) direct enzymatic cleavage, (d) alpha-hydroxylation, or (e) hydride ion transfer. Pathway intermediates spontaneously decompose in water producing nitrite, nitrous oxide, formaldehyde, or formic acid as common end-products. In vitro enzyme and functional gene expression studies have implicated a limited number of enzymes/genes involved in cyclic nitramine catabolism. Advances in molecular biology methods such as high-throughput DNA sequencing, microarray analysis, and nucleic acid sample preparation are providing access to biochemical and genetic information on cultivable and uncultivable microorganisms. This information can provide the knowledge base for rational engineering of bioremediation strategies, biosensor development, environmental monitoring, and green biosynthesis of explosives. This paper reviews recent developments on the biodegradation of cyclic nitramines and the potential of genomics to identify novel functional genes of explosive metabolism.
机译:环状硝胺炸药在全球范围内主要是作为军事弹药合成,其使用已造成环境污染。已经提出了几种生物降解途径,这些途径主要基于最终产物的表征,因为许多代谢中间体都是假设的,并且在水中不稳定。环状硝胺的生物降解机理包括:(a)硝胺自由基的形成和硝基官能团的损失;(b)硝基官能团的还原;(c)直接酶促裂解;(d)α-羟基化;或(e)氢化物离子转移。通路中间体在水中自发分解,生成亚硝酸盐,一氧化二氮,甲醛或甲酸作为常见的终产物。体外酶和功能基因表达研究表明,参与环硝胺分解代谢的酶/基因数量有限。诸如高通量DNA测序,微阵列分析和核酸样品制备等分子生物学方法的进步为人们提供了有关可培养和不可培养微生物的生化和遗传信息的途径。这些信息可以为合理设计生物修复策略,生物传感器开发,环境监测以及炸药的绿色生物合成提供知识基础。本文概述了环硝胺的生物降解的最新进展以及基因组学鉴定爆炸性代谢新功能基因的潜力。

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