Microbial bioremediation of heavy metals

Ana Volarić, Z. Svirčev, Dragana Tamindžija, D. Radnović
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引用次数: 2

Abstract

Heavy metal pollution is one of the most serious environmental problems, due to metal ions persistence, bioavailability, and toxicity. There are many conventional physical and chemical techniques traditionally used for environmental clean-up. Due to several drawbacks regarding these methods, the use of living organisms, or bioremediation, is becoming more prevalent. Biotechnological application of microorganisms is already successfully implemented and is in constant development, with many microbial strains successfully removing heavy metals. This paper provides an overview of the main heavy metal characteristics and describes the interactions with microorganisms. Key heavy metal resistance mechanisms in microorganisms are described, as well as the main principles and types of heavy metal bioremediation methods, with details on successful pilot scale bioreactor studies. Special attention should be given to indigenous bacteria isolated from the polluted environments since such species are already adapted to contamination and possess resistance mechanisms. Utilization of bacterial biofilms or consortia could be advantageous due to higher resistance and a combination of several metabolic pathways, and thus, the possibility to remove several heavy metals simultaneously. Novel technologies covered in this review, such as nanotechnology, genetic engineering, and metagenomics, are being introduced to the field of bioremediation in order to improve the process. To conclude, bioremediation is a potentially powerful solution for cleaning the environment.
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重金属的微生物修复
由于重金属离子的持久性、生物利用度和毒性,重金属污染是最严重的环境问题之一。有许多传统的物理和化学技术传统上用于环境清理。由于这些方法的一些缺点,使用活生物体,或生物修复,正变得越来越普遍。微生物的生物技术应用已经成功实施,并在不断发展,许多微生物菌株成功地去除重金属。本文综述了重金属的主要特征,并描述了与微生物的相互作用。介绍了微生物对重金属的主要抗性机制,以及重金属生物修复方法的主要原理和类型,并详细介绍了成功的中试规模生物反应器研究。应特别注意从污染环境中分离出来的本地细菌,因为这些物种已经适应污染并具有抗性机制。利用细菌生物膜或细菌联合体可能是有利的,因为它们具有更高的抗性和几种代谢途径的结合,因此有可能同时去除几种重金属。本综述所涉及的新技术,如纳米技术、基因工程和宏基因组学,正在被引入生物修复领域,以改进这一过程。综上所述,生物修复是清洁环境的一个潜在的强有力的解决方案。
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