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三种痕量金属(Cd、Cu、Pb)耐受性和生物吸附的比较。

Comparison of tolerance and biosorption of three trace metals (Cd, Cu, Pb) by the soil fungus Absidia cylindrospora.

机构信息

Normandie Univ, UNICAEN, ABTE EA 4651, Centre F. Baclesse, 14000, Caen, France.

Normandie Univ, UNIROUEN, CETAPS EA3 832, 76821, Mont Saint Aignan Cedex, France.

出版信息

Chemosphere. 2018 Apr;196:386-392. doi: 10.1016/j.chemosphere.2017.12.156. Epub 2017 Dec 28.

DOI:10.1016/j.chemosphere.2017.12.156
PMID:29316464
Abstract

Trace metals cause deterioration of the soil and constitute a major concern for the environment and human health. Bioremediation could be an effective solution for the rectification of contaminated soils. Fungi could play an important role in biodegradation because of the morphology of their mycelium (highly reactive and extensive biological surface) and its physiology (high tolerance to many stresses, production of enzymes and secondary metabolites). Fungi can effectively biosequestrate, or biotransform many organic and inorganic contaminants into a non-bioavailable form. This experiment was designed to evaluate the tolerance and the biosorption abilities of the fungus Absidia cylindrospora against three trace metals: Cadmium (Cd), Copper (Cu), and Lead (Pb). Firstly, the tolerance of the strain was evaluated on metal-enriched malt extract agar (MEA). Secondly, the strain was exposed to trace metals, in a liquid malt extract medium. After 3 or 7 days of exposure, the quantities of absorbed and adsorbed metals were measured with Inductively Coupled Plasma-Optical Emission Spectrometry (ICP-OES). Biomass production and pH evolution were also evaluated during the test. Our experiment revealed differences between the three metals. In agar medium, Cd and Pb were better tolerated than Cu. In liquid medium, Cd and Pb were mostly absorbed whereas Cu was mostly adsorbed. A. cylindrospora biosorbed 14% of Cu, 59% of Pb and 68% of Cd when exposed for 3 days at 50 mg L.

摘要

痕量金属会导致土壤恶化,是环境和人类健康的主要关注点。生物修复可能是纠正污染土壤的有效方法。真菌由于其菌丝体的形态(高反应性和广泛的生物表面)及其生理学(对许多压力的高耐受性、酶和次生代谢物的产生),可以在生物降解中发挥重要作用。真菌可以有效地将许多有机和无机污染物螯合或转化为非生物可利用的形式。本实验旨在评估曲霉菌 Absidia cylindrospora 对三种痕量金属(镉、铜和铅)的耐受性和生物吸附能力。首先,在富含麦芽提取物琼脂(MEA)上评估菌株的耐受性。其次,将菌株暴露于痕量金属在麦芽提取物液体培养基中。暴露 3 或 7 天后,用电感耦合等离子体-光学发射光谱法(ICP-OES)测量吸收和吸附的金属量。在测试过程中还评估了生物量的产生和 pH 值的变化。我们的实验揭示了这三种金属之间的差异。在琼脂培养基中,镉和铅的耐受性优于铜。在液体培养基中,镉和铅主要被吸收,而铜主要被吸附。当在 50mg/L 下暴露 3 天时,A. cylindrospora 吸附了 14%的铜、59%的铅和 68%的镉。

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