细菌对重金属的抗性机制综述

Aminu Yusuf Fardami, Umar Balarabe Ibrahim, Muntasir Sabitu, Abduljalil Lawal, Mahdi Ahmad Adamu, A. Aliyu, Ibrahim Lawal, Abdullahi Ibrahim Dalhatu, Muhammad Sanusi Zainab, A. Farouq
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引用次数: 0

摘要

随着环境中重金属污染水平的上升,微生物对重金属的耐药性日益受到关注。细菌的重金属抗性通常是通过被动和主动机制的结合来实现的,包括微生物细胞内的重金属隔离、外排或转化。在外排机制中,膜蛋白的能量依赖性离子从细胞外排是去除重金属所必需的。了解环境的理化参数、微生物群落的结构和多样性、重金属的性质和浓度对于制定有效的重金属污染场地修复策略至关重要。许多微生物在生态系统中起着重要的作用,特别是在重金属的生物地球化学循环中,通过去除环境中的金属。砷、铅、镉和汞是与最常见的生态有害金属相关的重金属,它们可以对微生物产生毒性,并且自然界已经进化出少数微生物群,这些微生物群被发现能够抵抗重金属的影响,同时在其生态系统中蓬勃发展,如假单胞菌、大肠杆菌和粘质沙雷氏菌,它们可以抵抗汞。蜡样芽孢杆菌和碱性芽孢杆菌也能抵抗Cu、Cd、Pb、Cr和Ni。由于冶炼引起的当地和区域土壤重金属污染是目前人类生态系统中日益严重的重大环境问题。因此,研究细菌对重金属的抗性机制对于制定减少重金属污染对环境影响的策略至关重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mechanisms of Bacterial Resistance to Heavy Metals: A Mini Review
Because of rising levels of heavy metal pollution in the environment, microbial resistance to heavy metals has become an increasing concern. Heavy metal resistance in bacteria is typically achieved through a combination of passive and active mechanisms, including heavy metal sequestration, efflux, or transformation within the microbial cell. During the efflux mechanism, a membrane protein's energy-dependent ion efflux from the cell is necessary for heavy metal removal. Understanding the physicochemical parameters of the environment, structure and diversity of microbial communities, nature and concentration of heavy metals is critical for developing effective strategies for the remediation of heavy metal-contaminated sites. Many microbes play a significant part on functioning ecosystem more especially in the biogeochemical cycling of heavy metals by removing the metals from the environment. As, Pb, Cd, and Hg are among heavy metals that are associated with the most common ecologically hazardous metals that can be toxic to microbes and still nature has evolved few groups of microbes that were found to resist the effect of heavy metals while thriving within their ecosystem such as Pseudomonas sp., Escherichia coli and Serratia marcescens that can resist Hg. Pseudomonas putida, Cupriavidus necator, Exiguobacterium sp., Bacillus aquimaris, Bacillus cereus and Alcaligenes sp. can also resist Cu, Cd, Pb, Cr and Ni. The exposure of local and regional soil with heavy metal pollution due to smelting causes which poses major environmental issues that is currently on rise in human ecosystem. Therefore, studying the mechanisms of bacterial resistance to heavy metal is critical for developing strategies to reduce the environmental impact of heavy metal pollution.
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