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首页> 外文期刊>International Biodeterioration & Biodegradation >Biodegradation of persistent organic pollutants in soil, water and pristine sites by cold-adapted microorganisms: Mini review
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Biodegradation of persistent organic pollutants in soil, water and pristine sites by cold-adapted microorganisms: Mini review

机译:冷适应微生物对土壤,水和原始区域中持久性有机污染物的生物降解作用

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Although persistent organic pollutants (POPs) have been banned since 1970s in many countries, their extensive use and false disposition have led to serious environmental pollution problems. POPs and their metabolic products are ubiquitous in all ecological niches. In addition, pollution has extended to pristine cold sites as well, which are now considered as the ultimate sink for many POPs. However, slight information is available on the biodegradation of POPs in such sites. Furthermore, it is estimated that more than 70 % of earth's surface is cold. Since temperature plays a significant role in controlling microbial metabolism, mesophilic microorganisms are inefficient at eliminating POPs at low temperatures. On the contrary, cold-adapted microorganisms are physiologically distinct and offer tremendous natural source of enzymes that work effectively in cold. Such organisms have high catalytic efficiency at low temperatures and have great economical and environmental potential. This review describes the microbial enzymes features that contribute to the adaptation to cold and discuss the potential of cold-adapted microorganisms to bioremediate pristine cold sites contaminated with POPs where mesophilic microorganisms are ineffective. (C) 2015 Elsevier Ltd. All rights reserved.
机译:尽管自1970年代以来许多国家已禁止使用持久性有机污染物(POPs),但持久性有机污染物的广泛使用和错误处置导致了严重的环境污染问题。持久性有机污染物及其代谢产物在所有生态环境中无处不在。此外,污染也已蔓延到原始的寒冷地区,现在被认为是许多持久性有机污染物的最终汇源。但是,关于此类地点中持久性有机污染物的生物降解的信息很少。此外,据估计地球表面的70%以上是寒冷的。由于温度在控制微生物代谢中起着重要作用,因此嗜温微生物在消除低温持久性有机污染物方面效率不高。相反,适应寒冷的微生物在生理上截然不同,并提供了巨大的天然酶来源,可在寒冷条件下有效发挥作用。这种生物在低温下具有高催化效率,并且具有巨大的经济和环境潜力。这篇综述描述了有助于适应寒冷的微生物酶特性,并讨论了适应冷空气的微生物对中温微生物无效的,被POPs污染的原始寒冷部位进行生物修复的潜力。 (C)2015 Elsevier Ltd.保留所有权利。

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