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短期接触工程纳米材料会影响细胞表观基因组。

Short-term exposure to engineered nanomaterials affects cellular epigenome.

作者信息

Lu Xiaoyan, Miousse Isabelle R, Pirela Sandra V, Melnyk Stepan, Koturbash Igor, Demokritou Philip

机构信息

a Center for Nanotechnology and Nanotoxicology , Department of Environmental Health , Harvard School of Public Health , Boston , MA , USA .

b Department of Environmental and Occupational Health , College of Public Health, University of Arkansas for Medical Sciences , Little Rock , AR , USA , and.

出版信息

Nanotoxicology. 2016;10(2):140-50. doi: 10.3109/17435390.2015.1025115. Epub 2015 May 4.

Abstract

Extensive incorporation of engineered nanomaterials (ENMs) into industrial and biomedical applications increases the risks of exposure to these potentially hazardous materials. While the geno- and cytotoxic effects of ENMs have been investigated, the potential of ENMs to target the cellular epigenome remains largely unknown. Our goal was to determine whether industry relevant ENMs can affect the epigenome at low cytotoxic doses. A panel of cells relevant to inhalation exposures such as human and murine macrophages (THP-1 and RAW264.7, respectively) and human small airway epithelial cells (SAEC) were exposed to printer-emitted engineered nanoparticles (PEPs), mild steel welding fumes (MS-WF), copper oxide (CuO) and titanium dioxide nanoparticles. Toxicological effects, including cytotoxicity, oxidative stress and inflammatory responses were assessed, taking into consideration in vitro dosimetry. The effects of ENMs on cellular epigenome were determined by addressing the global and transposable elements (TEs)-associated DNA methylation and expression of DNA methylation machinery and TEs. The percentage of ENMs-induced cytotoxicity for all cell lines was in the range of 0-15%. Oxidative stress was evident in SAEC after exposure to PEPs and in THP-1 when exposed to CuO. In addition, exposure to ENMs resulted in modest alterations in DNA methylation of two most abundant TEs in mammalian genomes, LINE-1 and Alu/SINE, their transcriptional reactivation, and decreased expression of DNA methylation machinery in a cell-, dose- and ENM-dependent manner. These results indicate that exposure to ENMs at environmentally relevant concentrations, aside from the geno- and cytotoxic effects, can also affect the epigenome of target cells.

摘要

工程纳米材料(ENMs)广泛应用于工业和生物医学领域,增加了接触这些潜在有害物质的风险。虽然已对ENMs的基因毒性和细胞毒性作用进行了研究,但ENMs靶向细胞表观基因组的潜力仍 largely未知。我们的目标是确定与工业相关的ENMs在低细胞毒性剂量下是否会影响表观基因组。将一组与吸入暴露相关的细胞,如人巨噬细胞和鼠巨噬细胞(分别为THP-1和RAW264.7)以及人小气道上皮细胞(SAEC)暴露于打印机排放的工程纳米颗粒(PEPs)、低碳钢焊接烟尘(MS-WF)、氧化铜(CuO)和二氧化钛纳米颗粒。评估了包括细胞毒性、氧化应激和炎症反应在内的毒理学效应,并考虑了体外剂量测定。通过研究全局和转座元件(TEs)相关的DNA甲基化以及DNA甲基化机制和TEs的表达,确定了ENMs对细胞表观基因组的影响。所有细胞系中ENMs诱导的细胞毒性百分比在0-15%范围内。暴露于PEPs后SAEC中以及暴露于CuO后THP-1中均出现明显的氧化应激。此外,暴露于ENMs导致哺乳动物基因组中两种最丰富的TEs,即LINE-1和Alu/SINE的DNA甲基化发生适度改变,它们的转录重新激活,并以细胞、剂量和ENM依赖的方式降低了DNA甲基化机制的表达。这些结果表明,在环境相关浓度下暴露于ENMs,除了基因毒性和细胞毒性作用外,还会影响靶细胞的表观基因组。

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