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医学应用中纳米金颗粒未来环境浓度的概率建模作为风险评估的基础。

Probabilistic modelling of prospective environmental concentrations of gold nanoparticles from medical applications as a basis for risk assessment.

作者信息

Mahapatra Indrani, Sun Tian Yin, Clark Julian R A, Dobson Peter J, Hungerbuehler Konrad, Owen Richard, Nowack Bernd, Lead Jamie

机构信息

School of Geography, Earth and Environmental Sciences, University of Birmingham, Edgbaston, Birmingham, B15 2TT, UK.

Empa-Swiss Federal Laboratories for Materials Science and Technology, Technology and Society Laboratory, Lerchenfeldstrasse 5, 9014, St. Gallen, Switzerland.

出版信息

J Nanobiotechnology. 2015 Dec 22;13:93. doi: 10.1186/s12951-015-0150-0.

Abstract

BACKGROUND

The use of gold nanoparticles (Au-NP) based medical applications is rising due to their unique physical and chemical properties. Diagnostic devices based on Au-NP are already available in the market or are in clinical trials and Au-NP based therapeutics and theranostics (combined diagnostic and treatment modality) are in the research and development phase. Currently, no information on Au-NP consumption, material flows to and concentrations in the environment are available. Therefore, we estimated prospective maximal consumption of Au-NP from medical applications in the UK and US. We then modelled the Au-NP flows post-use and predicted their environmental concentrations. Furthermore, we assessed the environment risks of Au-NP by comparing the predicted environmental concentrations (PECs) with ecological threshold (PNEC) values.

RESULTS

The mean annual estimated consumption of Au-NP from medical applications is 540 kg for the UK and 2700 kg for the US. Among the modelled concentrations of Au-NP in environmental compartments, the mean annual PEC of Au-NP in sludge for both the UK and US was estimated at 124 and 145 μg kg(-1), respectively. The mean PEC in surface water was estimated at 468 and 4.7 pg L(-1), respectively for the UK and US. The NOEC value for the water compartment ranged from 0.12 up to 26,800 μg L(-1), with most values in the range of 1000 μg L(-1).

CONCLUSION

The results using the current set of data indicate that the environmental risk from Au-NP used in nanomedicine in surface waters and from agricultural use of biosolids is minimal in the near future, especially because we have used a worst-case use assessment. More Au-NP toxicity studies are needed for the soil compartment.

摘要

背景

由于金纳米颗粒(Au-NP)独特的物理和化学性质,其在医学领域的应用正在增加。基于Au-NP的诊断设备已投放市场或正在进行临床试验,基于Au-NP的治疗方法和诊疗手段(诊断与治疗相结合的方式)正处于研发阶段。目前,尚无关于Au-NP消耗量、流入环境的物质流及其在环境中的浓度的信息。因此,我们估算了英国和美国医学应用中Au-NP的预期最大消耗量。然后,我们对Au-NP使用后的流向进行了建模,并预测了其在环境中的浓度。此外,我们通过将预测的环境浓度(PEC)与生态阈值(PNEC)值进行比较,评估了Au-NP的环境风险。

结果

英国医学应用中Au-NP的年平均估计消耗量为540千克,美国为2700千克。在模拟的Au-NP在环境各部分的浓度中,英国和美国污泥中Au-NP的年平均PEC分别估计为124和145微克/千克。英国和美国地表水中的平均PEC分别估计为468和4.7皮克/升。水相的无可见效应浓度(NOEC)值范围为0.12至26,800微克/升,大多数值在1000微克/升范围内。

结论

使用当前数据集的结果表明,在不久的将来,纳米医学中使用的Au-NP对地表水以及生物固体在农业使用中造成的环境风险极小,特别是因为我们采用了最坏情况使用评估。对于土壤部分,还需要更多的Au-NP毒性研究。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/259c/4688950/c24f24260749/12951_2015_150_Fig1_HTML.jpg

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