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首页> 外文期刊>Ecotoxicology and Environmental Safety >Toxicity assessment of TiO_2-MWCNT nanohybrid material with enhanced photocatalytic activity on Danio rerio (Zebrafish) embryos
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Toxicity assessment of TiO_2-MWCNT nanohybrid material with enhanced photocatalytic activity on Danio rerio (Zebrafish) embryos

机译:具有增强的光催化活性的TiO_2-MWCNT纳米复合材料对斑马鱼胚胎的毒性评估

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摘要

The increasing production and use of nanomaterials is causing serious concerns about their safety to human and environmental health. However, the applications of titanium dioxide nanoparticles (TiO2NP) and multiwalled carbon nanotubes (MWCNT) hybrids has grown considerably, due to their enhanced photocatalytic efficiency. To our knowledge, there are no reports available to the scientific community about their toxicity. In this work, we perform a toxicity assessment of TiO2NP and TiO2-MWCNT nanohybrid materials using Zebrafish embryos standardized 96 h early life stage assay, under different exposure conditions (with and without UV light exposure). After exposure the parameters assessed were acute toxicity, hatching rate, growth, yolk sac size, and sarcomere length. In addition mu-probe X-ray fluorescence spectroscopy (p-XRF) was employed to observe if nanoparticles were uptaken by zebrafish embryos and consequently accumulated in their organisms. Neither TiO2NP nor TiO2-MWCNT nanohybrids presented acute toxicity to the zebrafish embryos. Moreover, TiO2NP presents sublethal effects for total length (with and without UV light exposure) on the embryos. This work contributes to the understanding of the potential adverse effects of the emerging nanohybrid materials towards safe innovation approaches in nanotechnology.
机译:纳米材料生产和使用的增加正引起人们对其对人类和环境健康的安全性的严重关注。然而,由于提高了光催化效率,二氧化钛纳米颗粒(TiO2NP)和多壁碳纳米管(MWCNT)杂化材料的应用已大大增加。据我们所知,科学界尚无关于其毒性的报告。在这项工作中,我们使用斑马鱼胚胎标准化的96 h早期生命周期测定法,在不同的暴露条件下(有和没有UV照射)对TiO2NP和TiO2-MWCNT纳米杂化材料进行毒性评估。暴露后评估的参数为急性毒性,孵化率,生长,卵黄囊大小和肌节长度。另外,使用mu-probe X射线荧光光谱法(p-XRF)观察纳米粒子是否被斑马鱼胚胎摄取并因此积累在其生物体内。 TiO2NP和TiO2-MWCNT纳米杂交体均未对斑马鱼胚胎产生急性毒性。此外,TiO2NP对胚胎的全长(有或没有紫外线照射)都具有亚致死作用。这项工作有助于了解新兴的纳米混合材料对纳米技术安全创新方法的潜在不利影响。

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