Literature DB >> 32864508

Surface coatings alter transcriptional responses to silver nanoparticles following oral exposure.

Sameera Nallanthighal1,2, Lukas Tierney3, Nathaniel C Cady3, Thomas M Murray3, Sridar V Chittur1,2, Ramune Reliene1,4.   

Abstract

Silver nanoparticles (AgNPs) are used in food packaging materials, dental care products and other consumer goods and can result in oral exposure. To determine whether AgNP coatings modulate transcriptional responses to AgNP exposure, we exposed mice orally to 20 nm citrate (cit)-coated AgNPs (cit-AgNPs) or polyvinylpyrrolidone (PVP)-coated AgNPs (PVP-AgNPs) at a 4 mg/kg dose for 7 consecutive days and analyzed changes in the expression of protein-coding genes and long noncoding RNAs (lncRNAs), a new class of regulatory RNAs, in the liver. We identified unique and common expression signatures of protein-coding and lncRNA genes, altered biological processes and signaling pathways, and coding-non-coding gene interactions for cit-AgNPs and PVP-AgNPs. Commonly regulated genes comprised only about 10 and 20 percent of all differentially expressed genes in PVP-AgNP and cit-AgNP exposed mice, respectively. Commonly regulated biological processes included glutathione metabolic process and cellular oxidant detoxification. Commonly regulated pathways included Keap-Nrf2, PPAR, MAPK and IL-6 signaling pathways. The coding-non-coding gene co-expression analysis revealed that protein-coding genes were co-expressed with a variable number of lncRNAs ranging from one to twenty three and may share functional roles with the protein-coding genes. PVP-AgNP exposure induced a more robust transcriptional response than cit-AgNP exposure characterized by more than two-fold higher number of differentially expressed both protein- coding and lncRNA genes. Our data demonstrate that the surface coating strongly modulates the spectrum and the number of differentially expressed genes after oral AgNP exposure. On the other hand, our data suggest that AgNP exposure can alter drug and chemical sensitivity, metabolic homeostasis and cancer risk irrespective of the coating type, warranting further investigations.

Entities:  

Keywords:  Silver nanoparticles; in vivo; long noncoding RNA; mouse; transcriptomics

Year:  2019        PMID: 32864508      PMCID: PMC7453744          DOI: 10.1016/j.impact.2019.100205

Source DB:  PubMed          Journal:  NanoImpact        ISSN: 2452-0748


  82 in total

1.  Identification, characterization and expression profiles of Chironomus riparius glutathione S-transferase (GST) genes in response to cadmium and silver nanoparticles exposure.

Authors:  Prakash M Gopalakrishnan Nair; Jinhee Choi
Journal:  Aquat Toxicol       Date:  2010-12-17       Impact factor: 4.964

2.  Systematic and integrative analysis of large gene lists using DAVID bioinformatics resources.

Authors:  Da Wei Huang; Brad T Sherman; Richard A Lempicki
Journal:  Nat Protoc       Date:  2009       Impact factor: 13.491

3.  Nanoparticle release from nano-silver antimicrobial food containers.

Authors:  Yolanda Echegoyen; Cristina Nerín
Journal:  Food Chem Toxicol       Date:  2013-08-13       Impact factor: 6.023

Review 4.  β-Arrestin-mediated receptor trafficking and signal transduction.

Authors:  Sudha K Shenoy; Robert J Lefkowitz
Journal:  Trends Pharmacol Sci       Date:  2011-06-15       Impact factor: 14.819

5.  Release of silver from nanotechnology-based consumer products for children.

Authors:  Marina E Quadros; Raymond Pierson; Nicolle S Tulve; Robert Willis; Kim Rogers; Treye A Thomas; Linsey C Marr
Journal:  Environ Sci Technol       Date:  2013-07-17       Impact factor: 9.028

6.  Bioavailability and toxicokinetics of citrate-coated silver nanoparticles in rats.

Authors:  Kwangsik Park; Eun-Jung Park; In Koo Chun; Kyunghee Choi; Sang Hee Lee; Junheon Yoon; Byung Chun Lee
Journal:  Arch Pharm Res       Date:  2011-04-06       Impact factor: 4.946

7.  Nrf-2-driven long noncoding RNA ODRUL contributes to modulating silver nanoparticle-induced effects on erythroid cells.

Authors:  Ming Gao; Beibei Zhao; Minjun Chen; Yun Liu; Ming Xu; Zhe Wang; Sijin Liu; Chengdong Zhang
Journal:  Biomaterials       Date:  2017-03-22       Impact factor: 12.479

8.  Farnesoid X receptor activation by chenodeoxycholic acid induces detoxifying enzymes through AMP-activated protein kinase and extracellular signal-regulated kinase 1/2-mediated phosphorylation of CCAAT/enhancer binding protein β.

Authors:  Kyoung Noh; Young Mi Kim; Young Woo Kim; Sang Geon Kim
Journal:  Drug Metab Dispos       Date:  2011-05-19       Impact factor: 3.922

Review 9.  Silver Nanoparticles: Technological Advances, Societal Impacts, and Metrological Challenges.

Authors:  Bryan Calderón-Jiménez; Monique E Johnson; Antonio R Montoro Bustos; Karen E Murphy; Michael R Winchester; José R Vega Baudrit
Journal:  Front Chem       Date:  2017-02-21       Impact factor: 5.221

Review 10.  Nanosilver particles in medical applications: synthesis, performance, and toxicity.

Authors:  Liangpeng Ge; Qingtao Li; Meng Wang; Jun Ouyang; Xiaojian Li; Malcolm M Q Xing
Journal:  Int J Nanomedicine       Date:  2014-05-16
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