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Biomagnification of cadmium selenide quantum dots in a simple experimental microbial food chain

机译:简单实验微生物食物链中硒化镉量子点的生物放大

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Previous studies have shown that engineered nanomaterials can be transferred from prey to predator, but the ecological impacts of this are mostly unknown. In particular, it is not known if these materials can be biomagnified - a process in which higher concentrations of materials accumulate in organisms higher up in the food chain. Here, we show that bare CdSe quantum dots that have accumulated in Pseudomonas aeruginosa bacteria can be transferred to and biomagnified in the Tetrahymena thermophila protozoa that prey on the bacteria. Cadmium concentrations in the protozoa predator were approximately five times higher than their bacterial prey. Quantum-dot-treated bacteria were differentially toxic to the protozoa, in that they inhibited their own digestion in the protozoan food vacuoles. Because the protozoa did not lyse, largely intact quantum dots remain available to higher trophic levels. The observed biomagnification from bacterial prey is significant because bacteria are at the base of environmental food webs. Our findings illustrate the potential for biomagnification as an ecological impact of nanomaterials.
机译:先前的研究表明,工程纳米材料可以从猎物转移到捕食者,但是这种生态影响主要是未知的。特别是,这些物质是否可以被生物放大是未知的,在这个过程中,较高浓度的物质会在食物链中较高的生物体内积累。在这里,我们显示了铜绿假单胞菌细菌中积累的裸露的CdSe量子点可以转移到捕食该细菌的嗜热四膜虫原生动物中并被生物放大。原生动物捕食者中的镉浓度约为其细菌猎物的五倍。经量子点处理的细菌对原生动物具有不同的毒性,因为它们抑制了原生动物食物液泡中的自身消化。由于原生动物未裂解,因此在较高营养水平下仍可使用大部分完整的量子点。由于细菌是环境食物网的基础,因此观察到的细菌猎物的生物放大作用非常重要。我们的发现说明了生物放大作为纳米材料的生态影响的潜力。

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