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Items: 1 to 20 of 108

1.

Use of a rapid cytotoxicity screening approach to engineer a safer zinc oxide nanoparticle through iron doping.

George S, Pokhrel S, Xia T, Gilbert B, Ji Z, Schowalter M, Rosenauer A, Damoiseaux R, Bradley KA, Mädler L, Nel AE.

ACS Nano. 2010 Jan 26;4(1):15-29. doi: 10.1021/nn901503q.

2.

Comparison of the mechanism of toxicity of zinc oxide and cerium oxide nanoparticles based on dissolution and oxidative stress properties.

Xia T, Kovochich M, Liong M, Mädler L, Gilbert B, Shi H, Yeh JI, Zink JI, Nel AE.

ACS Nano. 2008 Oct 28;2(10):2121-34. doi: 10.1021/nn800511k. Erratum in: ACS Nano. 2008 Dec 23;2(12):2592.

3.

Decreased dissolution of ZnO by iron doping yields nanoparticles with reduced toxicity in the rodent lung and zebrafish embryos.

Xia T, Zhao Y, Sager T, George S, Pokhrel S, Li N, Schoenfeld D, Meng H, Lin S, Wang X, Wang M, Ji Z, Zink JI, Mädler L, Castranova V, Lin S, Nel AE.

ACS Nano. 2011 Feb 22;5(2):1223-35. doi: 10.1021/nn1028482. Epub 2011 Jan 20.

4.

The fate of ZnO nanoparticles administered to human bronchial epithelial cells.

Gilbert B, Fakra SC, Xia T, Pokhrel S, Mädler L, Nel AE.

ACS Nano. 2012 Jun 26;6(6):4921-30. doi: 10.1021/nn300425a. Epub 2012 Jun 7.

5.

Microsomal glutathione transferase 1 protects against toxicity induced by silica nanoparticles but not by zinc oxide nanoparticles.

Shi J, Karlsson HL, Johansson K, Gogvadze V, Xiao L, Li J, Burks T, Garcia-Bennett A, Uheida A, Muhammed M, Mathur S, Morgenstern R, Kagan VE, Fadeel B.

ACS Nano. 2012 Mar 27;6(3):1925-38. doi: 10.1021/nn2021056. Epub 2012 Feb 13.

6.

Submicron and nano formulations of titanium dioxide and zinc oxide stimulate unique cellular toxicological responses in the green microalga Chlamydomonas reinhardtii.

Gunawan C, Sirimanoonphan A, Teoh WY, Marquis CP, Amal R.

J Hazard Mater. 2013 Sep 15;260:984-92. doi: 10.1016/j.jhazmat.2013.06.067. Epub 2013 Jul 4.

PMID:
23892165
7.

Relating cytotoxicity, zinc ions, and reactive oxygen in ZnO nanoparticle-exposed human immune cells.

Shen C, James SA, de Jonge MD, Turney TW, Wright PF, Feltis BN.

Toxicol Sci. 2013 Nov;136(1):120-30. doi: 10.1093/toxsci/kft187. Epub 2013 Aug 31.

PMID:
23997113
8.

Stability, bioavailability, and bacterial toxicity of ZnO and iron-doped ZnO nanoparticles in aquatic media.

Li M, Pokhrel S, Jin X, Mädler L, Damoiseaux R, Hoek EM.

Environ Sci Technol. 2011 Jan 15;45(2):755-61. doi: 10.1021/es102266g. Epub 2010 Dec 6.

PMID:
21133426
9.

In vitro evaluation of cellular responses induced by ZnO nanoparticles, zinc ions and bulk ZnO in fish cells.

Fernández D, García-Gómez C, Babín M.

Sci Total Environ. 2013 May 1;452-453:262-74. doi: 10.1016/j.scitotenv.2013.02.079. Epub 2013 Mar 22.

PMID:
23523724
10.

Evidence for Fe(2+) in wurtzite coordination: iron doping stabilizes ZnO nanoparticles.

Xiao J, Kuc A, Pokhrel S, Schowalter M, Parlapalli S, Rosenauer A, Frauenheim T, Mädler L, Pettersson LG, Heine T.

Small. 2011 Oct 17;7(20):2879-86. doi: 10.1002/smll.201100963. Epub 2011 Sep 12.

PMID:
21913325
11.

Zinc oxide-engineered nanoparticles: dissolution and toxicity to marine phytoplankton.

Miao AJ, Zhang XY, Luo Z, Chen CS, Chin WC, Santschi PH, Quigg A.

Environ Toxicol Chem. 2010 Dec;29(12):2814-22. doi: 10.1002/etc.340. Epub 2010 Oct 7.

PMID:
20931607
12.

Mechanism-based genotoxicity screening of metal oxide nanoparticles using the ToxTracker panel of reporter cell lines.

Karlsson HL, Gliga AR, Calléja FM, Gonçalves CS, Wallinder IO, Vrieling H, Fadeel B, Hendriks G.

Part Fibre Toxicol. 2014 Sep 2;11:41. doi: 10.1186/s12989-014-0041-9.

13.

Systematic investigation of the physicochemical factors that contribute to the toxicity of ZnO nanoparticles.

Mu Q, David CA, Galceran J, Rey-Castro C, Krzemiński L, Wallace R, Bamiduro F, Milne SJ, Hondow NS, Brydson R, Vizcay-Barrena G, Routledge MN, Jeuken LJ, Brown AP.

Chem Res Toxicol. 2014 Apr 21;27(4):558-67. doi: 10.1021/tx4004243. Epub 2014 Mar 12.

PMID:
24575710
14.

Use of a high-throughput screening approach coupled with in vivo zebrafish embryo screening to develop hazard ranking for engineered nanomaterials.

George S, Xia T, Rallo R, Zhao Y, Ji Z, Lin S, Wang X, Zhang H, France B, Schoenfeld D, Damoiseaux R, Liu R, Lin S, Bradley KA, Cohen Y, Nel AE.

ACS Nano. 2011 Mar 22;5(3):1805-17. doi: 10.1021/nn102734s. Epub 2011 Feb 16.

15.

Zinc oxide nanoparticles inhibit expression of manganese superoxide dismutase via amplification of oxidative stress, in murine photoreceptor cells.

Guo da D, Li Q, Tang HY, Su J, Bi HS.

Cell Prolif. 2016 Jun;49(3):386-94. doi: 10.1111/cpr.12257. Epub 2016 Apr 20.

PMID:
27094462
16.

Titanium oxide shell coatings decrease the cytotoxicity of ZnO nanoparticles.

Hsiao IL, Huang YJ.

Chem Res Toxicol. 2011 Mar 21;24(3):303-13. doi: 10.1021/tx1001892. Epub 2011 Feb 22.

PMID:
21341804
17.

Zinc-Oxide Nanoparticles Exhibit Genotoxic, Clastogenic, Cytotoxic and Actin Depolymerization Effects by Inducing Oxidative Stress Responses in Macrophages and Adult Mice.

Pati R, Das I, Mehta RK, Sahu R, Sonawane A.

Toxicol Sci. 2016 Apr;150(2):454-72. doi: 10.1093/toxsci/kfw010. Epub 2016 Jan 21.

PMID:
26794139
18.

In vitro cytotoxicity of silver nanoparticles and zinc oxide nanoparticles to human epithelial colorectal adenocarcinoma (Caco-2) cells.

Song Y, Guan R, Lyu F, Kang T, Wu Y, Chen X.

Mutat Res. 2014 Nov;769:113-8. doi: 10.1016/j.mrfmmm.2014.08.001. Epub 2014 Aug 12.

PMID:
25771730
19.

ZnO, TiO(2), SiO(2,) and Al(2)O(3) nanoparticles-induced toxic effects on human fetal lung fibroblasts.

Zhang XQ, Yin LH, Tang M, Pu YP.

Biomed Environ Sci. 2011 Dec;24(6):661-9. doi: 10.3967/0895-3988.2011.06.011.

20.

Development and validation of TOF-SIMS and CLSM imaging method for cytotoxicity study of ZnO nanoparticles in HaCaT cells.

Lee PL, Chen BC, Gollavelli G, Shen SY, Yin YS, Lei SL, Jhang CL, Lee WR, Ling YC.

J Hazard Mater. 2014 Jul 30;277:3-12. doi: 10.1016/j.jhazmat.2014.03.046. Epub 2014 Mar 31.

PMID:
24731914

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