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利用细菌的遗传和生化能力修复重金属污染。

Exploiting the genetic and biochemical capacities of bacteria for the remediation of heavy metal pollution.

作者信息

Valls Marc, de Lorenzo Víctor

机构信息

Centro Nacional de Biotecnología CSIC, Campus de Cantoblanco, 28049 Madrid, Spain.

出版信息

FEMS Microbiol Rev. 2002 Nov;26(4):327-38. doi: 10.1111/j.1574-6976.2002.tb00618.x.

DOI:10.1111/j.1574-6976.2002.tb00618.x
PMID:12413663
Abstract

The threat of heavy metal pollution to public health and wildlife has led to an increased interest in developing systems that can remove or neutralise its toxic effects in soil, sediments and wastewater. Unlike organic contaminants, which can be degraded to harmless chemical species, heavy metals cannot be destroyed. Remediating the pollution they cause can therefore only be envisioned as their immobilisation in a non-bioavailable form, or their re-speciation into less toxic forms. While these approaches do not solve the problem altogether, they do help to protect afflicted sites from noxious effects and isolate the contaminants as a contained and sometimes recyclable residue. This review outlines the most important bacterial phenotypes and properties that are (or could be) instrumental in heavy metal bioremediation, along with what is known of their genetic and biochemical background. A variety of instances are discussed in which valuable properties already present in certain strains can be combined or improved through state-of-the-art genetic engineering. In other cases, knowledge of metal-related reactions catalysed by some bacteria allows optimisation of the desired process by altering the physicochemical conditions of the contaminated area. The combination of genetic engineering of the bacterial catalysts with judicious eco-engineering of the polluted sites will be of paramount importance in future bioremediation strategies.

摘要

重金属污染对公众健康和野生动物构成威胁,这使得人们对开发能够去除或中和土壤、沉积物和废水中重金属毒性影响的系统越来越感兴趣。与有机污染物不同,有机污染物可以降解为无害的化学物质,而重金属无法被销毁。因此,对它们所造成污染的修复只能设想为将它们固定成一种无法生物利用的形式,或者将它们重新转化为毒性较小的形式。虽然这些方法并不能完全解决问题,但它们确实有助于保护受影响的场地免受有害影响,并将污染物隔离成一种可控且有时可回收的残留物。本综述概述了在重金属生物修复中(或可能)起重要作用的最重要细菌表型和特性,以及它们的遗传和生化背景。文中讨论了多种情况,在这些情况中,某些菌株中已有的宝贵特性可以通过先进的基因工程进行组合或改进。在其他情况下,对一些细菌催化的与金属相关反应的了解使得可以通过改变污染区域的物理化学条件来优化所需的过程。在未来的生物修复策略中,细菌催化剂的基因工程与受污染场地的合理生态工程相结合将至关重要。

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