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The effects of manufactured nanomaterial transformations on bioavailability, toxicity and transcriptomic responses of Caenorhabditis elegans.

机译:人造纳米材料转化对秀丽隐杆线虫的生物利用度,毒性和转录组学响应的影响。

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摘要

In recent decades, there has been a rapid expansion in the use of manufactured nanoparticles (MNPs). Experimental evidence and material flow models predict that MNPs enter wastewater treatment plants and partition to sewage sludge and majority of that sludge is land applied as biosolids. During wastewater treatment and after land application, MNPs undergo biogeochemical transformations (aging). The primary transformation process for silver MNPs (Ag-MNPs) is sulfidation, while zinc oxide MNPs (ZnO-MNPs) most likely undergo phosphatation and sulfidation. Our overall goal was to assess bioavailability and toxicogenomic impacts of both pristine, defined assynthesized, and aged Ag- and ZnO-MNPs, as well as their respective ions, to a model organism, the soil nematode Caenorhabditis elegans.;We first investigated the toxicity of pristine Ag-MNPs, sulfidized Ag-MNPs (sAg- MNPs), and AgNO3 to identify the most sensitive ecologically relevant endpoint in C. elegans. We identified reproduction as the most sensitive endpoint for all treatments with sAg-MNPs being about 10-fold less toxic than pristine Ag-MNPs. Using synchrotron x-ray microspectroscopy we demonstrated that AgNO3 and pristine Ag-MNPs had similar bioavailability while aged sAg-MNPs caused toxicity without being taken up by C. elegans . Comparisons of the genomic impacts of both MNPs revealed that Ag-MNPs and sAg-MNPs have transcriptomic profiles distinct from each other and from AgNO3. The toxicity mechanisms of sAg-MNPs are possibly associated with damaging effects to cuticle.;We also investigated the effects pristine zinc oxide MNPs (ZnO-MNPs) and aged ZnO-MNPs, including phosphatated (pZnO-MNPs) and sulfidized (sZnO-MNPs), as well as ZnSO4 have on C. elegans using a toxicogenomic approach. Aging of ZnO-MNPs reduced toxicity nearly 10-fold. Toxicity of pristine ZnO-MNPs was similar to the toxicity caused by ZnSO4 but less than 30% of responding genes was shared between these two treatments. This suggests that some of the effects of pristine ZnO-MNPs are also particle-specific. The genomic results showed that based on Gene Ontology and induced biological pathways all MNP treatments shared more similarities than any MNP treatment did with ZnSO4.;This dissertation demonstrates that the toxicity of Ag- and ZnO-MNPs to C. elegans is reduced and operates through different mechanisms after transformation during the wastewater treatment process.;KEYWORDS: Silver Nanomaterials, Zinc oxide nanomaterials, Bioaccumulation, Nanomaterial transformations, Wastewater treatment, Agriculture.
机译:在最近的几十年中,人造纳米粒子(MNP)的使用已迅速扩展。实验证据和物质流模型预测,MNP进入废水处理厂并分配到污水污泥中,并且大部分污泥是作为生物固体用于土地的。在废水处理过程中和土地施用后,MNP经历生物地球化学转化(老化)。银MNP(Ag-MNP)的主要转化过程是硫化,而氧化锌MNP(ZnO-MNP)最有可能发生磷酸化和硫化。我们的总体目标是评估定义为合成的原始Ag-和ZnO-MNPs以及老化的Ag-和ZnO-MNPs及其各自的离子对模型生物土壤线虫秀丽隐杆线虫的生物利用度和毒物基因组学影响。原始Ag-MNP,硫化Ag-MNP(sAg-MNP)和AgNO3的鉴定,以鉴定秀丽隐杆线虫中最敏感的生态相关终点。我们确定生殖是所有sAg-MNPs治疗的最敏感终点,其毒性比原始Ag-MNPs低约10倍。使用同步加速器X射线显微技术,我们证明了AgNO3和原始的Ag-MNPs具有相似的生物利用度,而老化的sAg-MNPs则引起了毒性,而不会被秀丽隐杆线虫吸收。比较两种MNP的基因组影响,发现Ag-MNP和sAg-MNP的转录组谱彼此不同,与AgNO3不同。 sAg-MNPs的毒性机制可能与对表皮的破坏作用有关。我们还研究了原始氧化锌MNPs(ZnO-MNPs)和老化的ZnO-MNPs的作用,包括磷酸化(pZnO-MNPs)和硫化的(sZnO-MNPs ),以及ZnSO4都使用线虫基因组学方法对秀丽隐杆线虫进行了研究。 ZnO-MNP的老化将毒性降低了近10倍。原始ZnO-MNPs的毒性与ZnSO4引起的毒性相似,但在这两种处理方法中共有不到30%的响应基因。这表明原始ZnO-MNP的某些作用也是颗粒特异性的。基因组学结果表明,基于基因本体论和诱导的生物学途径,所有MNP处理与ZnSO4相比均具有更多的相似性;这表明Ag和ZnO-MNP对秀丽隐杆线虫的毒性降低并通过关键词:银纳米材料,氧化锌纳米材料,生物累积,纳米材料转化,废水处理,农业。

著录项

  • 作者

    Starnes, Daniel Lee.;

  • 作者单位

    University of Kentucky.;

  • 授予单位 University of Kentucky.;
  • 学科 Soil sciences.;Environmental science.;Toxicology.
  • 学位 Ph.D.
  • 年度 2016
  • 页码 163 p.
  • 总页数 163
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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