Department of Environmental and Occupational Health, College of Medicine, National Cheng Kung University, Tainan 70101, Taiwan.
Department of Physiology, College of Medicine, National Cheng Kung University, Tainan 70101, Taiwan.
Int J Mol Sci. 2020 Apr 20;21(8):2864. doi: 10.3390/ijms21082864.
As the worldwide application of nanomaterials in commercial products increases every year, various nanoparticles from industry might present possible risks to aquatic systems and human health. Presently, there are many unknowns about the toxic effects of nanomaterials, especially because the unique physicochemical properties of nanomaterials affect functional and toxic reactions. In our research, we sought to identify the targets and mechanisms for the deleterious effects of two different sizes (~10 and ~50 nm) of amine-modified silver nanoparticles (AgNPs) in a zebrafish embryo model. Fluorescently labeled AgNPs were taken up into embryos via the chorion. The larger-sized AgNPs (LAS) were distributed throughout developing zebrafish tissues to a greater extent than small-sized AgNPs (SAS), which led to an enlarged chorion pore size. Time-course survivorship revealed dose- and particle size-responsive effects, and consequently triggered abnormal phenotypes. LAS exposure led to lysosomal activity changes and higher number of apoptotic cells distributed among the developmental organs of the zebrafish embryo. Overall, AgNPs of ~50 nm in diameter exhibited different behavior from the ~10-nm-diameter AgNPs. The specific toxic effects caused by these differences in nanoscale particle size may result from the different mechanisms, which remain to be further investigated in a follow-up study.
随着纳米材料在商业产品中的全球应用逐年增加,来自工业界的各种纳米颗粒可能对水生系统和人类健康带来潜在风险。目前,对于纳米材料的毒性影响有许多未知之处,特别是因为纳米材料的独特物理化学性质会影响功能和毒性反应。在我们的研究中,我们试图确定两种不同尺寸(约 10nm 和 50nm)的胺修饰的银纳米颗粒(AgNPs)在斑马鱼胚胎模型中产生有害影响的靶标和机制。荧光标记的 AgNPs 通过卵壳被胚胎吸收。较大尺寸的 AgNPs(LAS)比小尺寸的 AgNPs(SAS)更广泛地分布在发育中的斑马鱼组织中,这导致卵壳孔大小增大。时间进程存活率揭示了剂量和颗粒尺寸响应的影响,并因此引发了异常表型。LAS 暴露导致溶酶体活性变化和更多的凋亡细胞分布在斑马鱼胚胎的发育器官中。总体而言,直径约为 50nm 的 AgNPs 的行为与直径约为 10nm 的 AgNPs 不同。这些纳米级颗粒尺寸差异所导致的特定毒性效应可能源于不同的机制,这需要在后续研究中进一步研究。