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Silver nanoparticle-induced hemoglobin decrease involves alteration of histone 3 methylation status

delete2015-11-01
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PRE
AI
Q
Qian Yi
J
Jie Zhang
Q
Qinglin Hu
M
Ming Xu
Y
Yue Chen
G
Guoqing Hu
M
Meirong Zhao
S
Sijin Liu *
DOI:10.1016/j.biomaterials.2015.08.015delete
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摘要

摘要

En 中文
Silver nanoparticles (nanosilver, AgNPs) have been shown to induce toxicity in vitro and in vivo; however, the molecular bases underlying the detrimental effects have not been thoroughly understood. Although there are numerous studies on its genotoxicity, only a few studies have investigated the epigenetic changes, even less on the changes of histone modifications by AgNPs. In the current study, we probed the AgNP-induced alterations to histone methylation that could be responsible for globin reduction in erythroid cells. AgNP treatment caused a significant reduction of global methylation level for histone 3 (H3) in erythroid MEL cells at sublethal concentrations, devoid of oxidative stress. The ChIP-PCR analyses demonstrated that methylation of H3 at lysine (Lys) 4 (H3K4) and Lys 79 (H3K79) on the beta-globin locus was greatly reduced. The reduction in methylation could be attributed to decreased histone methyltransferase DOT-1L and MLL levels as well as the direct binding between AgNPs to H3/H4 that provide steric hindrance to prevent methylation as predicted by the all-atom molecular dynamics simulations. This direct interaction was further proved by AgNP-mediated pull-down assay and immunoprecipitation assay. These changes, together with decreased RNA polymerase II activity and chromatin binding at this locus, resulted in decreased hemoglobin production. By contrast, Ag ion-treated cells showed no alterations in histone methylation level. Taken together, these results showed a novel finding in which AgNPs could alter the methylation status of histone. Our study therefore opens a new avenue to study the biological effects of AgNPs at sublethal concentrations from the perspective of epigenetic mechanisms. (C) 2015 Elsevier Ltd. All rights reserved.
Keyword:
Nanosilver
Epigenetics
Transcription
Hemoglobin
Histone
Methylation
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期刊

Biomaterials 封面图
Biomaterials
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12.9
论文数:
1.9W
被引数:
10.8W

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research center for eco-environmental sciences (rcees)
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zhejiang university of technology
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chinese academy of sciences
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