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秀丽隐杆线虫对原始和硫化银纳米颗粒的不同转录组反应。

Distinct transcriptomic responses of Caenorhabditis elegans to pristine and sulfidized silver nanoparticles.

作者信息

Starnes Daniel L, Lichtenberg Stuart S, Unrine Jason M, Starnes Catherine P, Oostveen Emily K, Lowry Gregory V, Bertsch Paul M, Tsyusko Olga V

机构信息

Department of Plant and Soil Sciences, University of Kentucky, 1100 South Limestone Street, Lexington, KY 40546, United States.

Department of Plant and Soil Sciences, University of Kentucky, 1100 South Limestone Street, Lexington, KY 40546, United States; Center for Environmental Implications of NanoTechnology (CEINT), P.O. Box 90287, Duke University, Durham, NC 27708-0287, United States.

出版信息

Environ Pollut. 2016 Jun;213:314-321. doi: 10.1016/j.envpol.2016.01.020. Epub 2016 Feb 27.

Abstract

Manufactured nanoparticles (MNP) rapidly undergo aging processes once released from products. Silver sulfide (Ag2S) is the major transformation product formed during the wastewater treatment process for Ag-MNP. We examined toxicogenomic responses of pristine Ag-MNP, sulfidized Ag-MNP (sAg-MNP), and AgNO3 to a model soil organism, Caenorhabditis elegans. Transcriptomic profiling of nematodes which were exposed at the EC30 for reproduction for AgNO3, Ag-MNP, and sAg-MNP resulted in 571 differentially expressed genes. We independently verified expression of 4 genes (numr-1, rol-8, col-158, and grl-20) using qRT-PCR. Only 11% of differentially expressed genes were common among the three treatments. Gene ontology enrichment analysis also revealed that Ag-MNP and sAg-MNP had distinct toxicity mechanisms and did not share any of the biological processes. The processes most affected by Ag-MNP relate to metabolism, while those processes most affected by sAg-MNP relate to molting and the cuticle, and the most impacted processes for AgNO3 exposed nematodes was stress related. Additionally, as observed from qRT-PCR and mutant experiments, the responses to sAg-MNP were distinct from AgNO3 while some of the effects of pristine MNP were similar to AgNO3, suggesting that effects from Ag-MNP is partially due to dissolved silver ions.

摘要

人造纳米颗粒(MNP)一旦从产品中释放出来,就会迅速经历老化过程。硫化银(Ag2S)是Ag-MNP废水处理过程中形成的主要转化产物。我们研究了原始Ag-MNP、硫化Ag-MNP(sAg-MNP)和AgNO3对模式土壤生物秀丽隐杆线虫的毒理基因组反应。对暴露于AgNO3、Ag-MNP和sAg-MNP繁殖EC30浓度下的线虫进行转录组分析,结果显示有571个差异表达基因。我们使用qRT-PCR独立验证了4个基因(numr-1、rol-8、col-158和grl-20)的表达。在三种处理中,只有11%的差异表达基因是共有的。基因本体富集分析还表明,Ag-MNP和sAg-MNP具有不同的毒性机制,且没有共享任何生物学过程。受Ag-MNP影响最大的过程与代谢有关,而受sAg-MNP影响最大的过程与蜕皮和角质层有关,暴露于AgNO3的线虫受影响最大的过程与应激有关。此外,从qRT-PCR和突变实验中观察到,对sAg-MNP的反应与AgNO3不同,而原始MNP的一些影响与AgNO3相似,这表明Ag-MNP的影响部分归因于溶解的银离子。

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