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Derivation of occupational exposure limits for multi-walled carbon nanotubes and graphene using subchronic inhalation toxicity data and a multi-path particle dosimetry model

机译:使用副级吸入毒性数据和多路径粒子剂量模型衍生多壁碳纳米管和石墨烯的职业暴露限制

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摘要

In this study, we aimed to provide the recommended occupational exposure limits (OELs) for multi-walled carbon nanotubes (MWCNTs) and graphene nanomaterials based on data from a subchronic inhalation toxicity study using a lung dosimetry model. We used a no observed adverse effect level (NOAEL) of 0.98 mg m(-3) and 3.02 mg m(-3) in rats for MWCNTs and graphene, respectively. The NOAELs were obtained from a 13-week inhalation study in rats. The deposition fractions of MWCNTs and graphene in the respiratory tract of rats and humans were calculated by using the multi-path particle dosimetry model (MPPD model, v3.04). The deposition fraction in the alveolar region was 0.0527 and 0.0984 for MWCNTs and 0.0569 and 0.1043 for graphene in rats and human lungs, respectively. Then, the human equivalent exposure concentrations (HECs) of MWCNTs and graphene were calculated according to the method by the National Institute for Occupational Safety and Health (NIOSH). The HEC was estimated to be 0.17 mg m(-3) for MWCNTs and to be 0.54 mg m(-3) for graphene, which was relevant to the rat NOAEL of 0.98 mg m(-3) and 3.02 mg m(-3) for MWCNTs and graphene, respectively. Finally, we estimated the recommended OELs by applying uncertainty factors (UFs) to the HEC as follows: an UF of 3 for species differences (rats to humans), 2 for an experimental duration (subchronic to chronic), and 5 for inter-individual variations among workers. Thus, the OEL was estimated to be 6 mu g m(-3) for MWCNTs and 18 mu g m(-3) for graphene. These values could be useful in preventing the adverse health effects of nanoparticles in workers.
机译:在这项研究中,我们的目标是基于使用肺剂量测定模型的副旋转吸入毒性研究的数据提供推荐的职业暴露限制(MWCNT)和石墨烯纳米材料。我们在MWCNT和石墨烯的大鼠中使用了0.98mg m(-3)和3.02mg m(-3)的未观察到的不良反应水平(noael)。从大鼠的13周的吸入研究中获得NoALEL。通过使用多路径粒子剂量模型(MPPD模型,V3.04)计算大鼠和人类呼吸道中MWCNT和石墨烯的沉积级分。对于大鼠和人肺的石墨烯,肺泡区中的沉积级分为0.0527和0.0984和0.0569和0.1043。然后,根据国家职业安全和健康研究所(Niosh)的方法计算MWCNTs和石墨烯的人类等价曝光浓度(HEC)。对于MWCNT的估计,HEC为0.17mg m(-3),对于石墨烯为0.54mg m(-3),与大鼠NOAEL为0.98mg m(-3)和3.02 mg m(-3 )分别用于MWCNT和石墨烯。最后,我们通过将不确定因子(UFS)施加到HEC,如下估算推荐的OEL:用于物种差异(大鼠对人类)的UF,用于实验持续时间(次级调整到慢性),5个用于个体间工人的变化。因此,对于石墨烯的MWCNT和18μgm(-3)估计,七元均为6μgm(-3)。这些值可用于预防纳米颗粒在工人的不利健康影响。

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  • 来源
    《Toxicology Research》 |2019年第4期|共7页
  • 作者单位

    Chung Ang Univ Coll Med Dept Prevent Med Seoul 06974 South Korea;

    Korea Conform Lab Incheon 21999 South Korea;

    Korea Conform Lab Incheon 21999 South Korea;

    Hoseo Univ Dept Nanofus Technol Asan 31499 South Korea;

    Chung Ang Univ Coll Med Dept Prevent Med Seoul 06974 South Korea;

    HCTm Co LTD Icheon 17383 South Korea;

    Chung Ang Univ Coll Med Dept Prevent Med Seoul 06974 South Korea;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 药学;
  • 关键词

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