酸性矿井废水中微生物的生存机制:硫、铁、碳和氮的代谢途径

Estácio Jussie Odisi, Diego Serrasol do Amaral, Marcus Adonai Castro da Silva, André Oliveira de Souza Lima, Leonardo Rubi Rörig
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引用次数: 0

摘要

尽管采矿具有重要的经济意义,但通常会造成严重的环境退化。在采矿活动中进行的挖掘过程使矿物暴露于大气中的氧气和水中,调节了一系列生物地球化学过程,这些过程可能导致酸性矿井水(AMD)的产生。AMD的pH值低,硫酸盐和重金属浓度高,为生命创造了极端的环境条件。这些环境中通常居住着能够从铁和硫中获取能量的微生物,利用有限的碳和氮来源。此外,这些微生物需要抵抗极低pH值和高浓度重金属的机制,这些重金属对细胞结构具有毒性和致命性。酸胁迫耐受性包括在外部值较低的情况下将细胞内pH值维持在适当水平的主动机制,以及抗酸胁迫的适应性过程,允许微生物在低pH值下进行代谢。这些适应性使微生物有可能在AMD环境中生存,因此,代表了生物修复和其他生物技术应用的潜力,如生物矿化和寻找工业过程中的生物分子。本文综述了AMD环境中微生物生存的代谢和适应机制,重点介绍了它们如何利用硫、铁、碳和氮的代谢途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Survival mechanisms of microorganisms occurring in acid mine drainage: sulfur, iron, carbon, and nitrogen metabolic pathways
Despite its economic importance, mining usually generates intense environmental degradation. The excavation process carried out in mining activities exposes minerals to atmospheric oxygen and water, conditioning a series of biogeochemical processes that can lead to the production of acid mine drainage (AMD). AMD has low pH and high concentrations of sulphates and heavy metals, creating environments with extreme conditions for life. These environments are usually inhabited by microorganisms able to acquire energy from iron and sulfur, using limited sources of carbon and nitrogen. In addition, these microorganisms need mechanisms to resist to extremely low pH and high concentration of heavy metals that can be toxic and lethal to the cellular structure. Acid stress tolerance involves active mechanisms to maintain intracellular pH at adequate levels despite low external values, and adaptive processes against acid stress allowing microorganisms to operate metabolically at low pH. The set of these adaptations give microorganisms the possibility of surviving in AMD environments and, consequently, represent potential for bioremediation and other biotechnological applications like biomining and search for biomolecules for industrial processes. The purpose of this review was to compile the metabolic and adaptive mechanisms involved in the survival of microorganisms occurring in AMD environments, focusing on how they utilize sulfur, iron, carbon and nitrogen metabolic pathways.
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