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耐酸藻 Graesiella sp. MA1 与水铁矿在长期酸性条件下的相互作用。

Interaction between acid-tolerant alga Graesiella sp. MA1 and schwertmannite under long-term acidic condition.

机构信息

School of Resources and Environmental Engineering, Hefei University of Technology, Hefei, Anhui 230009, China; Anhui Engineering Research Center of Industrial Wastewater Treatment and Resource Recovery, Hefei University of Technology, Hefei, Anhui 230009, China.

School of Resources and Environmental Engineering, Hefei University of Technology, Hefei, Anhui 230009, China; Anhui Engineering Research Center of Industrial Wastewater Treatment and Resource Recovery, Hefei University of Technology, Hefei, Anhui 230009, China; Key Laboratory of Nanominerals and Pollution Control of Anhui Higher Education Institutes, Hefei University of Technology, Hefei, Anhui 230009, China.

出版信息

Sci Total Environ. 2024 Oct 1;945:174017. doi: 10.1016/j.scitotenv.2024.174017. Epub 2024 Jun 17.

Abstract

Schwertmannite (Sch), a typical Fe(III)-oxyhydroxysulphate mineral, is the precipitation reservoir of toxic elements in acid mine drainage (AMD). Acid-tolerant microbes in AMD can participate in the microbe-mediated transformation of Sch, while Sch affects the physiological characteristics of these acid-tolerant microbes. Based on our discovery of algae and Sch enrichment in a contaminated acid mine pit lake, we predicted the interaction between algae and Sch when incubated together. The acid-tolerant alga Graesiella sp. MA1 was isolated from the pit-lake surface water of an acidic mine and incubated with different contents of Sch. Sch was detected as the main product at the end of 81 d; however, there was a weak transformation. The presence of dissolved Fe(II) could be largely attributed to the photoreduction dissolution of Sch, which was promoted by Graesiella sp. MA1. The adaptation and growth phases of Graesiella sp. MA1 differed under Sch stress. The photosynthetic and metabolic activities increased and decreased at the adaptation and growth phases, respectively. The MDA contents and antioxidant activity of SOD, APX, and GSH in algal cells gradually enhanced as the Sch treatment content increased, indicating a defense strategy of Graesiella sp. MA1. Metabolomic analysis revealed that Sch affected the expression of significant differential metabolites in Graesiella sp. MA1. Organic carboxylic acid substances were essentially up-regulated in response to Sch stress. They were abundant in the medium-Sch system with the highest Fe(III) reduction, capable of complexing Fe(III), and underwent photochemical reactions via photo-induced charge transfer. The significant up-regulation of reducing sugars revealed the high energy requirement of Graesiella sp. MA1 under Sch stress. And first enriched KEGG pathway demonstrated the importance of sugar metabolism in Graesiella sp. MA1. Data acquired in this study provide novel insights into extreme acid stress adaptation of acid-tolerant algae and Sch, contributing to furthering understanding of AMD environments.

摘要

针铁矿(Sch)是一种典型的三价铁-氧羟基硫酸盐矿物,是酸性矿山排水(AMD)中有毒元素的沉淀库。AMD 中的耐酸微生物可以参与 Sch 的微生物介导转化,而 Sch 则影响这些耐酸微生物的生理特性。基于我们在受污染的酸性矿山坑湖中发现藻类和 Sch 富集的现象,我们预测了藻类和 Sch 一起孵育时的相互作用。从酸性矿山坑湖地表水分离出耐酸藻类 Graesiella sp. MA1,并与不同含量的 Sch 孵育。在 81 天结束时检测到 Sch 是主要产物,但转化较弱。溶解的 Fe(II) 的存在很大程度上归因于 Sch 的光还原溶解,这是由 Graesiella sp. MA1 促进的。在 Sch 胁迫下,Graesiella sp. MA1 的适应和生长阶段不同。光合作用和代谢活性分别在适应和生长阶段增加和减少。随着 Sch 处理含量的增加,藻类细胞中 MDA 含量和 SOD、APX 和 GSH 的抗氧化活性逐渐增强,表明 Graesiella sp. MA1 具有防御策略。代谢组学分析表明,Sch 影响了 Graesiella sp. MA1 中显著差异代谢物的表达。有机羧酸物质对 Sch 胁迫基本上调,在中等 Sch 系统中含量最高,具有与 Fe(III) 络合的能力,并通过光诱导电荷转移进行光化学反应。还原糖的显著上调表明 Graesiella sp. MA1 在 Sch 胁迫下需要高能量。并且富集的第一个 KEGG 途径表明糖代谢在 Graesiella sp. MA1 中的重要性。本研究获得的数据为耐酸藻类和 Sch 对极端酸性胁迫的适应提供了新的见解,有助于进一步了解 AMD 环境。

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