首页> 外文期刊>Scientific reports. >The surface reactivity of iron oxide nanoparticles as a potential hazard for aquatic environments: A study on Daphnia magna adults and embryos
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The surface reactivity of iron oxide nanoparticles as a potential hazard for aquatic environments: A study on Daphnia magna adults and embryos

机译:氧化铁纳米粒子作为水生环境潜在危害的表面反应性:Daphnia Magna成人和胚胎的研究

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摘要

Nano-ecotoxicology is extensively debated and nanomaterial surface reactivity is an emerging topic. Iron oxide nanoparticles are widely applied, with organic or inorganic coatings for stabilizing their suspensions. Surface active maghemite nanoparticles (SAMNs) are the unique example of naked iron oxide displaying high colloidal and structural stability in water and chemical reactivity. The colloidal behavior of SAMNs was studied as a function of the medium salinity and protocols of acute and chronic toxicity on Daphnia magna were consequently adapted. SAMN distribution into the crustacean, intake/depletion rates and swimming performances were evaluated. No sign of toxicity was detected in two model organisms from the first trophic level ( P . subcapitata and L . minor ). In D . magna , acute EC50 values of SAMN was assessed, while no sub-lethal effects were observed and the accumulation of SAMNs in the gut appeared as the sole cause of mortality. Fast depuration and absence of delayed effects indicated no retention of SAMNs within the organism. In spite of negligible toxicity on D . magna adults, SAMN surface reactivity was responsible of membrane bursting and lethality on embryos. The present study offers a contribution to the nascent knowledge concerning the impact of nanoparticle surface reactivity on biological interfaces.
机译:纳米生态毒理学是广泛的争论,纳米材料反应性是一种新兴主题。氧化铁纳米颗粒被广泛应用,有机或无机涂层,用于稳定其悬浮液。表面活性磁石纳米粒子(Samns)是裸氧化铁的独特例子,显示水和化学反应性的高胶体和结构稳定性。研究了Samns的胶体行为作为中良盐度的函数,因此改编了Daphnia Magna上的急性和慢性毒性方案。 SAMN分布进入甲壳类动物,进气/耗尽率和游泳表演。在来自第一营养水平的两种模型生物中未检测到毒性的迹象(p.subcapitata和L.次要)。在d。 SMAMA,评估SAMN的急性EC 50 数值,同时没有观察到亚致死的效果,并且肠道中的Samns的积累出现为死亡率的唯一原因。快速缩小和不存在延迟效果表明在生物体中没有保留SAMN。尽管对D的毒性可忽略不计。 MANGA成年人,SAMN表面反应性是膜上的膜爆裂和致死性。本研究对纳米粒子表面反应性对生物界面的影响提供了贡献。

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