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金属和类金属的处理:细胞抗性机制与金属(类金属)基纳米结构的合成

Processing of Metals and Metalloids by : Cell Resistance Mechanisms and Synthesis of Metal(loid)-Based Nanostructures.

作者信息

Presentato Alessandro, Piacenza Elena, Turner Raymond J, Zannoni Davide, Cappelletti Martina

机构信息

Department of Biological, Chemical and Pharmaceutical Sciences and Technologies (STEBICEF), University of Palermo, 90128 Palermo, Italy.

Department of Biological Sciences, Calgary University, Calgary, AB T2N 1N4, Canada.

出版信息

Microorganisms. 2020 Dec 18;8(12):2027. doi: 10.3390/microorganisms8122027.

Abstract

Metal(loid)s have a dual biological role as micronutrients and stress agents. A few geochemical and natural processes can cause their release in the environment, although most metal-contaminated sites derive from anthropogenic activities. Actinobacteria include high GC bacteria that inhabit a wide range of terrestrial and aquatic ecological niches, where they play essential roles in recycling or transforming organic and inorganic substances. The metal(loid) tolerance and/or resistance of several members of this phylum rely on mechanisms such as biosorption and extracellular sequestration by siderophores and extracellular polymeric substances (EPS), bioaccumulation, biotransformation, and metal efflux processes, which overall contribute to maintaining metal homeostasis. Considering the bioprocessing potential of metal(loid)s by Actinobacteria, the development of bioremediation strategies to reclaim metal-contaminated environments has gained scientific and economic interests. Moreover, the ability of Actinobacteria to produce nanoscale materials with intriguing physical-chemical and biological properties emphasizes the technological value of these biotic approaches. Given these premises, this review summarizes the strategies used by Actinobacteria to cope with metal(loid) toxicity and their undoubted role in bioremediation and bionanotechnology fields.

摘要

金属(类金属)作为微量营养素和应激源具有双重生物学作用。一些地球化学和自然过程会导致它们在环境中释放,不过大多数金属污染场地源自人为活动。放线菌包括高GC含量的细菌,它们栖息于广泛的陆地和水生生态位,在其中对有机和无机物质的循环利用或转化起着至关重要的作用。该门的几个成员对金属(类金属)的耐受性和/或抗性依赖于生物吸附、铁载体和胞外聚合物(EPS)的胞外螯合、生物累积、生物转化以及金属外排等机制,这些机制总体上有助于维持金属稳态。考虑到放线菌对金属(类金属)的生物处理潜力,开发修复受金属污染环境的生物修复策略已引起了科学和经济方面的关注。此外,放线菌产生具有有趣物理化学和生物学特性的纳米级材料的能力凸显了这些生物方法的技术价值。基于这些前提,本综述总结了放线菌应对金属(类金属)毒性所采用的策略及其在生物修复和生物纳米技术领域中不容置疑的作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bedf/7767326/e1a732910711/microorganisms-08-02027-g001.jpg

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