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从二次资源中真菌生物回收金属的现状与展望。

Current overview and future perspective in fungal biorecovery of metals from secondary sources.

机构信息

Department of Inorganic Chemistry, Faculty of Natural Sciences, Comenius University in Bratislava, Ilkovicova 6, 842 15, Bratislava, Slovakia.

出版信息

J Environ Manage. 2023 Apr 15;332:117345. doi: 10.1016/j.jenvman.2023.117345. Epub 2023 Jan 30.

Abstract

Microorganisms are intimately involved in many biogeochemical processes that underpin the transformation of metals and cycling of related substances, such as metalloids and radionuclides. Many processes determine the mobility and bioavailability of metals, thereby influencing their transfer to the environment and living organisms. These processes are closely related to global phenomena such as soil formation and bioweathering. In addition to environmental significance, microbial metal transformations play an essential role in both in situ and ex situ bioremediation processes for solid and liquid wastes. The solubilization of heavy metals from industrial waste and soil is commonly used in bioremediation. Moreover, immobilization processes are applicable to bioremediation of metals and radionuclides from aqueous solutions. This review provides an overview of critical metal extraction and recovery from secondary sources, applied microorganisms and methods, metal-microbe interactions, as well as a detailed description of known metal recovery mechanisms.

摘要

微生物密切参与许多生物地球化学过程,这些过程是金属转化和相关物质(如类金属和放射性核素)循环的基础。许多过程决定了金属的迁移性和生物可利用性,从而影响它们向环境和生物体的转移。这些过程与土壤形成和生物风化等全球现象密切相关。除了具有环境意义外,微生物金属转化在原位和异位生物修复固体和液体废物的过程中也起着至关重要的作用。从工业废物和土壤中溶解重金属通常用于生物修复。此外,固定化过程适用于从水溶液中生物修复金属和放射性核素。本综述概述了从二次资源中提取和回收关键金属的方法、应用的微生物和方法、金属-微生物相互作用以及已知的金属回收机制的详细描述。

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