a Key Laboratory of Environmental Nanotechnology and Health Effects, Research Center for Eco-Environmental Sciences , Chinese Academy of Sciences , Beijing , China.
b College of Resources and Environment, University of Chinese Academy of Sciences , Beijing , China.
Nanotoxicology. 2019 May;13(4):543-557. doi: 10.1080/17435390.2019.1571645. Epub 2019 Feb 19.
Asbestos fiber has been associated with mesothelioma and lung cancer. However, the carcinogenic risks of other fiber nanomaterials with morphological similarities to asbestos have not been fully studied. Ultra-long silver nanowires (AgNWs) are increasingly used fiber-shaped nanomaterials with a high aspect ratio, but very few studies have investigated their health risks. Here, proliferation abnormalities of lung epithelial cells induced by ultra-long AgNWs were investigated. Ultra-long AgNW treatment induced dose- and diameter-dependent increase in the ratio of multinucleated cells. Further, proteins involved in mitosis and cytokinesis, including Aurora A, p-Histone 3 (ser10), RhoA, p-MLC, and myosin IIb, were significantly upregulated after an ultra-long AgNW treatment, leading to mitotic abnormalities and cytokinetic failure. Meanwhile, exposure to ultra-long AgNWs induced cell cycle arrest. Interestingly, a series of experiments demonstrated that ROS generation and Ag release were not responsible for the multinucleation induced by ultra-long AgNWs, but ultra-long AgNWs in the intercellular bridge might obstruct the contractile ring and inhibit abscission of the cytokinetic furrow by direct physical contact. Altogether, our findings indicate that ultra-long AgNWs can induce chromosomal instability, which has important consequences for the safety of ultra-long AgNWs to human health.
石棉纤维已被证实与间皮瘤和肺癌相关。然而,具有与石棉相似形态的其他纤维状纳米材料的致癌风险尚未得到充分研究。超长银纳米线(AgNWs)是一种具有高纵横比的越来越受欢迎的纤维状纳米材料,但很少有研究调查其健康风险。在这里,研究了超长 AgNW 诱导的肺上皮细胞增殖异常。超长 AgNW 处理会导致多核细胞比例随剂量和直径增加而增加。此外,超长 AgNW 处理后,有丝分裂和胞质分裂相关蛋白,包括 Aurora A、p-Histone 3(ser10)、RhoA、p-MLC 和肌球蛋白 IIb,显著上调,导致有丝分裂异常和胞质分裂失败。同时,暴露于超长 AgNWs 会导致细胞周期停滞。有趣的是,一系列实验表明,ROS 生成和 Ag 释放不是超长 AgNW 诱导多核化的原因,而是细胞间桥中的超长 AgNW 可能通过直接物理接触阻碍收缩环的收缩并抑制胞质分裂沟的分离。总之,我们的研究结果表明,超长 AgNW 可诱导染色体不稳定性,这对超长 AgNW 对人类健康的安全性具有重要意义。