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Research Article

Silver nanoparticles of 70 nm and 20 nm affect differently the biology of human neutrophils

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Pages 375-385 | Received 19 Jul 2015, Accepted 07 Oct 2015, Published online: 30 Nov 2015

References

  • Abrikossova N, Skoglund C, Ahrén M, Bengtsson T, Uvdal K. 2012. Effects of gadolinium oxide nanoparticles on the oxidative burst from human neutrophil granulocytes. Nanotechnology. 23:275101.
  • Achilli C, Ciana A, Balduini C, Risso A, Minetti G. 2011. Application of gelatin zymography for evaluating low levels of contaminating neutrophils in red blood cell samples. Anal Biochem. 409:296–297.
  • Aldossari AA, Shannahan JH, Podila R, Brown JM. 2015. Influence of physicochemical properties of silver nanoparticles on mast cell activation and degranulation. Toxicol In Vitro. 29:195–203.
  • Anderson DS, Silva RM, Lee D, Edwards PC, Sharmah A, Guo T, Pinkerton KE, Van Winkle LS. 2014. Persistence of silver nanoparticles in the rat lung: influence of dose, size, and chemical composition. Nanotoxicology. 9:591–602.
  • Antoine F, Simard JC, Girard D 2013. Curcumin inhibits agent-induced human neutrophil functions in vitro and lipopolysaccharide-induced neutrophilic infiltration in vivo. Intl Immunopharmacol. 17:1101–1107.
  • Arora S, Jain J, Rajwade JM, Paknikar KM. 2009. Interactions of silver nanoparticles with primary mouse fibroblasts and liver cells. Toxicol Appl Pharmacol. 236:310–318.
  • Arora S, Rajwade JM, Paknikar KM. 2012. Nanotoxicology and in vitro studies: the need of the hour. Toxicol Appl Pharmacol. 258:151–165.
  • Babin K, Antoine F, Goncalves DM, Girard D. 2013. TiO2, CeO2, and ZnO nanoparticles and modulation of the degranulation process in human neutrophils. Toxicol Lett. 221:57–63.
  • Bartneck M, Keul HA, Zwadlo-Klarwasser G, Groll J. 2010. Phagocytosis independent extracellular nanoparticle clearance by human immune cells. NanoLetters. 10:59–63.
  • Binet F, Cavalli H, Moisan E, Girard D. 2006. Arsenic trioxide (AT) is a novel human neutrophil pro-apoptotic agent: effects of catalase on AT-induced apoptosis, degradation of cytoskeletal proteins and de novo protein synthesis. Br J Haematol. 132:349–358.
  • Borregaard N, Cowland JB. 1997. Granules of the human neutrophilic polymorphonuclear leukocyte. Blood 89:3503–3521.
  • Brach MA, deVos S, Gruss HJ, Herrmann F 1992. Prolongation of survival of human polymorphonuclear neutrophils by granulocyte-macrophage colony-stimulating factor is caused by inhibition of programmed cell death. Blood 80:2920–2924.
  • Carvalho TC, Peters JI, Williams RO 3rd. 2011. Influence of particle size on regional lung deposition – what evidence is there? Intl J Pharm. 406:1–10.
  • Chaloupka K, Malam Y, Seifalian AM. 2010. Nanosilver as a new generation of nanoproduct in biomedical applications. Trends Biotechnol. 28:580–588.
  • Chekanov AV, Baranova OA, Levin AD, Solov'eva ÉIu, Fedin AI, Kazarinov KD. 2013. Study of influence of gold nanoparticles on activation of human blood neutrophils. Biofizika. 58:495–500.
  • Couto D, Freitas M, Vila-Boas V, Dias I, Porto G, Lopez-Quintela MA, Rivas J, Freitas P, Carvalho F, Fernandes E. 2014. Interaction of polyacrylic acid coated and non-coated iron oxide nanoparticles with human neutrophils. Toxicol Lett. 225:57–65.
  • Cox G, Austin RC. 1997. Dexamethasone-induced suppression of apoptosis in human neutrophils requires continuous stimulation of new protein synthesis. J Leukocyte Biol. 61:224–230.
  • Dupre-Crochet S, Erard M, Nubetae O. 2013. ROS production in phagocytes: why, when, and where? J Leukocyte Biol. 94:657–670.
  • Franci G, Falanga A, Galdiero S, Palomba L, Rai M, Morelli G, Galdiero M. 2015. Silver nanoparticles as potential anti-bacterial agents. Molecules 20:8856–8874.
  • Geering B, Simon HU. 2011. Peculiarities of cell death mechanisms in neutrophils. Cell Death Differ. 18:1457–1469.
  • Girard D, Paquet ME, Paquin R, Beaulieu AD. 1996. Differential effects of IL-15 and IL-2 on human neutrophils: modulation of phagocytosis, cytoskeleton re-arrangement, gene expression, and apoptosis by IL-15. Blood 88:3176–3184.
  • Girard D, Paquin R, Beaulieu AD. 1997. Responsiveness of human neutrophils to IL-4: induction of cytoskeletal re-arrangements, de novo protein synthesis, and delay of apoptosis. Biochem J. 325:147–153.
  • Goncalves DM, Girard D. 2014. Zinc oxide nanoparticles delay human neutrophil apoptosis by a de novo protein synthesis–dependent and reactive oxygen species-independent mechanism. Toxicol In Vitro. 28:926–931.
  • Goncalves DM, Chiasson S, Girard D. 2010. Activation of human neutrophils by titanium dioxide (TiO2) nanoparticles. Toxicol In Vitro. 24:1002–1008.
  • Hsieh SC, Sun KH, Tsai CY, Tsai YY, Tsai ST, Huang DF, Han SH, Yu HS, Yu CL. 2001. Monoclonal anti-double stranded DNA antibody is a leucocyte-binding protein to up-regulate IL-8 gene expression and elicit apoptosis of normal human polymorphonuclear neutrophils. Rheumatology (Oxford). 40:851–858.
  • Jin JO, Yu Q. 2015. Fucoidan delays apoptosis and induces pro-inflammatory cytokine production in human neutrophils. Intl J Biol Macromol. 73:65–71.
  • Karlsson A, Nixon JB, McPhail LC. 2000. Phorbol myristate acetate induces neutrophil NADPH-oxidase activity by two separate signal transduction pathways: Dependent or independent of phosphatidylinositol 3-kinase. J Leukocyte Biol. 67:396–404.
  • Manda-Handzlik A, Demkow U. 2015. Neutrophils: the role of oxidative and nitrosative stress in health and disease. Adv Exp Med Biol. 857:51–60.
  • Moeller S, Kegler R, Sternberg K, Mundkowski RG. 2012. Influence of sirolimus-loaded nanoparticles on physiological functions of native human polymorphonuclear neutrophils. Nanomedicine. 8:1293–1300.
  • Mohamud R, Xiang SD, Selomulya C, Rolland JM, O'Hehir RE, Hardy CL, Plebanski M. 2014. The effects of engineered nanoparticles on pulmonary immune homeostasis. Drug Metab Rev. 46:176–190.
  • Moisan E, Kouassi E, Girard D. 2003. Mechanisms involved in methylmercuric chloride (MeHgCl)–induced suppression of human neutrophil apoptosis. Human Exp Toxicol. 22:629–637.
  • Papatheofanis FJ, Barmada R. 1991. Polymorphonuclear leukocyte degranulation with exposure to polymethyl–methacrylate nanoparticles. J Biomed Mater Res. 25:761–771.
  • Pelletier M, Roberge CJ, Gauthier M, Vandal K, Tessier PA, Girard D. 2001. Activation of human neutrophils in vitro and dieldrin-induced neutrophilic inflammation in vivo. J Leukocyte Biol. 70:367–373.
  • Poirier M, Simard JC, Antoine F, Girard D. 2014. Interaction between silver nanoparticles of 20 nm (AgNP20) and human neutrophils: induction of apoptosis and inhibition of de novo protein synthesis by AgNP20 aggregates. J Appl Toxicol. 34:404–412.
  • Pratsinis A, Hervella P, Leroux JC, Pratsinis SE, Sotiriou GA. 2013. Toxicity of silver nanoparticles in macrophages. Small. 9:2576–2584.
  • Rinna A, Magdolenova Z, Hudecova A, Kruszewski M, Refsnes M, Dusinska M. 2015. Effect of silver nanoparticles on mitogen–activated protein kinases activation: role of reactive oxygen species and implication in DNA damage. Mutagenesis. 30:59–66.
  • Rosas-Hernández H, Jiménez-Badillo S, Martínez-Cuevas PP, Gracia-Espino E, Terrones H, Terrones M, Hussain SM, Ali SF, González C. 2009. Effects of 45-nm silver nanoparticles on coronary endothelial cells and isolated rat aortic rings. Toxicol Lett. 191:305–313.
  • Savoie A, Lavastre V, Pelletier M, Hajto T, Hostanska K, Girard D. 2000. Activation of human neutrophils by the plant lectin Viscum album agglutinin-I: modulation of de novo protein synthesis and evidence that caspases are involved in induction of apoptosis. J Leukocyte Biol. 68:845–853.
  • Seiffert J, Hussain F, Wiegman C, Li F, Bey L, Baker W, Porter A, Ryan MP, Chang Y, Gow A, et al. 2015. Pulmonary toxicity of instilled silver nanoparticles: influence of size, coating, and rat strain. PLoS One. 10:e0119726.
  • Shannahan JH, Podila R, Aldossari AA, Emerson H, Powell BA, Ke PC, Rao AM, Brown JM. 2015. Formation of a protein corona on silver nanoparticles mediates cellular toxicity via scavenger receptors. Toxicol Sci. 143:136–146.
  • Simard JC, Simon MM, Tessier PA, Girard D. 2011. Damage-associated molecular pattern S100A9 increases bactericidal activity of human neutrophils by enhancing phagocytosis. J Immunol. 186:3622–3631.
  • Sotiriou GA, Pratsinis SE. 2010. Anti-bacterial activity of nanosilver ions and particles. Environ Sci Technol. 44:5649–5654.
  • Stringer RE, Hart CA, Edwards SW. 1996. Sodium butyrate delays neutrophil apoptosis: role of protein biosynthesis in neutrophil survival. Br J Haematol. 92:169–175.
  • Wang Z, Xia T, Liu S. 2015. Mechanisms of nanosilver–induced toxicological effects: more attention should be paid to its sublethal effects. Nanoscale. 7:7470–7481.
  • Yang W, Lee S, Lee J, Bae Y, Kim D. 2010. Silver nanoparticle-induced degranulation observed with quantitative phase microscopy. J Biomed Optics. 15:045005.
  • Zieminska E, Stafiej A, Struzynska L. 2014. The role of the glutamatergic NMDA receptor in nanosilver–evoked neurotoxicity in primary cultures of cerebellar granule cells. Toxicology. 315:38–48.

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