51
Jacobsen NR, Pojana G, White AP, Moller P, Korsholm KS, Vogel U, Marcomini A, Loft S, Wallin
H (2008) Genotoxicity, cytotoxicity, and reactive oxygen species induced by single-walled
carbon nanotubes and C(60) fullerenes in the FE1-Mutatrade mark Mouse lung epithelial cells.
Environ Mol Mutagen 49(6):476–487
Jacobsen NR, White PA, Gingerich J, Moller P, Saber AT, Douglas GR, Vogel U, Wallin H (2011)
Mutation spectrum in FE1-MUTA(TM) mouse lung epithelial cells exposed tonanoparticulate
carbon black. Environ Mol Mutagen 52(4):331–337
Jang AS (2012) Particulate air pollutants and respiratory diseases, pp 153–174. https://doi.
org/10.5772/51363
Jani P, Halbert GW, Langridge J, Florence AT (1990) Nanoparticle uptake by the rat gastrointestinal mucosa: quantitation and particle size dependency. J Pharm Pharmacol 42(12):821–826
Ji ZQ, Sun H, Wang H, Xie Q, Liu Y, Wang Z (2006) Biodistribution and tumor uptake ofC60(OH)
x in mice. J Nanopart Res 8:53–63
Journeay WS, Suri SS, Moralez JG (2008) Rosette nanotubes show low acute pulmonary toxicity
in vivo. Int J Nanomedicine 3:373–383
Kamat JP, Devasagayam TP, Priyadarsini KI, Mohan H (2000) Reactive oxygen species mediated
membrane damage induced by fullerene derivatives and its possible biological implications.
Toxicology 155:55–61
Karthick B, Maheshwari R (2008) Lotus-inspired nanotechnology applications, RESONANCE,
December 2008
Kaufman E, Belyea D, Johnson J, Nicholson MC, Ricks ZM, Shah JL, Bayless PK, Pettersson
M, Feldotö T, Blomberg Z, Claesson P, Franzen S (2007) Probing protein adsorption onto
Mercaptoundecanoic acid stabilized gold nanoparticles and surfaces by quartz crystal microbalance and ζ-potential measurements. Langmuir 23(11):6053–6062
Kearns P (2012) OECD Programme on nanomaterials. WHO Workshop on nanotechnology and
human health: scientific evidence and risk governance. Bonn, Germany, 10–11 December 2012
Keller J, Wohlleben W, Ma-Hock L, Strauss V, Groters S, Kuttler K, Wiench K, Herden C,
Oberdorster G, van Ravenzwaay B, Landsiedel R (2014) Time course of lung retention and
toxicity of inhaled particles: short-term exposure to Nano-Ceria. Arch Toxicol 88:2033–2059
Kirchner C, Liedl T, Kudera S, Pellegriino T, Javier AM, Gaub HE, Stölzle S, Fertig N, Parak WJ
(2005) Cytotoxicity of colloidal CdSe and CdSe/ZnS nanoparticles. Nano Lett 5(2):331–338
Kobe A (2012) Nanomaterials in European Union regulation. WHO workshop on nanotechnology and human health: scientific evidence and risk governance. Bonn, Germany, 10–11
December 2012
Kohli AK, Alpar HO (2004) Potential use of nanoparticles for transcutaneous vaccine delivery:
effect of particle size and charge. Int J Pharm 275(1–2):13–17
Kreyling WG, Semmler M, Erbe F, Mayer P, Takenaka S, Schulz H, Oberdorster G, Ziesenis A
(2011) Translocation of ultrafine insoluble iridium particles from lung epithelium to extra pulmonary organs is size dependent but very low. J Toxicol Environ Health A 65(20):1513–1530
Lademann J, Weigmann H, Rickmeyer C, Barthelmes H, Schaefer H, Mueller G, Sterry W (1999)
Penetration of titanium dioxide microparticles in a sunscreen formulation into the horny layer
and the follicular orifice. Skin Pharmacol Physiol 12(5):247–256
Lam CW, James JT, McCluskey R, Hunter RL (2004) Pulmonary toxicity of single-wall carbon
nanotubes in mice 7 and 90 days after intratracheal instillation. Toxicol Sci 77:126–134
Lesniak A, Fenaroli F, Monopoli MR, Aberg C, Dawson KA, Salvati A (2012) Effects of the presence or absence of a protein Corona on silica nanoparticle uptake and impact on cells. ACS
Nano 6(7):5845–5857
Li N, Sioutas C, Cho A, Schmitz D, Misra C, Sempf J, Wang M, Oberley T, Froines J, Nel A (2003)
Ultrafine particulate pollutants induce oxidative stress and mitochondrial damage. Environ
Health Perspect 111(4):455–460
Li JJ, Muralikrishnan S, Ng CT, Yung LY, Bay BH (2010) Nanoparticle-induced pulmonary toxicity. Exp Biol Med 235(9):1025–1033
2 Nanomaterials and Human Health
Jacobsen NR, Pojana G, White AP, Moller P, Korsholm KS, Vogel U, Marcomini A, Loft S, Wallin
H (2008) Genotoxicity, cytotoxicity, and reactive oxygen species induced by single-walled
carbon nanotubes and C(60) fullerenes in the FE1-Mutatrade mark Mouse lung epithelial cells.
Environ Mol Mutagen 49(6):476–487
Jacobsen NR, White PA, Gingerich J, Moller P, Saber AT, Douglas GR, Vogel U, Wallin H (2011)
Mutation spectrum in FE1-MUTA(TM) mouse lung epithelial cells exposed tonanoparticulate
carbon black. Environ Mol Mutagen 52(4):331–337
Jang AS (2012) Particulate air pollutants and respiratory diseases, pp 153–174. https://doi.
org/10.5772/51363
Jani P, Halbert GW, Langridge J, Florence AT (1990) Nanoparticle uptake by the rat gastrointestinal mucosa: quantitation and particle size dependency. J Pharm Pharmacol 42(12):821–826
Ji ZQ, Sun H, Wang H, Xie Q, Liu Y, Wang Z (2006) Biodistribution and tumor uptake ofC60(OH)
x in mice. J Nanopart Res 8:53–63
Journeay WS, Suri SS, Moralez JG (2008) Rosette nanotubes show low acute pulmonary toxicity
in vivo. Int J Nanomedicine 3:373–383
Kamat JP, Devasagayam TP, Priyadarsini KI, Mohan H (2000) Reactive oxygen species mediated
membrane damage induced by fullerene derivatives and its possible biological implications.
Toxicology 155:55–61
Karthick B, Maheshwari R (2008) Lotus-inspired nanotechnology applications, RESONANCE,
December 2008
Kaufman E, Belyea D, Johnson J, Nicholson MC, Ricks ZM, Shah JL, Bayless PK, Pettersson
M, Feldotö T, Blomberg Z, Claesson P, Franzen S (2007) Probing protein adsorption onto
Mercaptoundecanoic acid stabilized gold nanoparticles and surfaces by quartz crystal microbalance and ζ-potential measurements. Langmuir 23(11):6053–6062
Kearns P (2012) OECD Programme on nanomaterials. WHO Workshop on nanotechnology and
human health: scientific evidence and risk governance. Bonn, Germany, 10–11 December 2012
Keller J, Wohlleben W, Ma-Hock L, Strauss V, Groters S, Kuttler K, Wiench K, Herden C,
Oberdorster G, van Ravenzwaay B, Landsiedel R (2014) Time course of lung retention and
toxicity of inhaled particles: short-term exposure to Nano-Ceria. Arch Toxicol 88:2033–2059
Kirchner C, Liedl T, Kudera S, Pellegriino T, Javier AM, Gaub HE, Stölzle S, Fertig N, Parak WJ
(2005) Cytotoxicity of colloidal CdSe and CdSe/ZnS nanoparticles. Nano Lett 5(2):331–338
Kobe A (2012) Nanomaterials in European Union regulation. WHO workshop on nanotechnology and human health: scientific evidence and risk governance. Bonn, Germany, 10–11
December 2012
Kohli AK, Alpar HO (2004) Potential use of nanoparticles for transcutaneous vaccine delivery:
effect of particle size and charge. Int J Pharm 275(1–2):13–17
Kreyling WG, Semmler M, Erbe F, Mayer P, Takenaka S, Schulz H, Oberdorster G, Ziesenis A
(2011) Translocation of ultrafine insoluble iridium particles from lung epithelium to extra pulmonary organs is size dependent but very low. J Toxicol Environ Health A 65(20):1513–1530
Lademann J, Weigmann H, Rickmeyer C, Barthelmes H, Schaefer H, Mueller G, Sterry W (1999)
Penetration of titanium dioxide microparticles in a sunscreen formulation into the horny layer
and the follicular orifice. Skin Pharmacol Physiol 12(5):247–256
Lam CW, James JT, McCluskey R, Hunter RL (2004) Pulmonary toxicity of single-wall carbon
nanotubes in mice 7 and 90 days after intratracheal instillation. Toxicol Sci 77:126–134
Lesniak A, Fenaroli F, Monopoli MR, Aberg C, Dawson KA, Salvati A (2012) Effects of the presence or absence of a protein Corona on silica nanoparticle uptake and impact on cells. ACS
Nano 6(7):5845–5857
Li N, Sioutas C, Cho A, Schmitz D, Misra C, Sempf J, Wang M, Oberley T, Froines J, Nel A (2003)
Ultrafine particulate pollutants induce oxidative stress and mitochondrial damage. Environ
Health Perspect 111(4):455–460
Li JJ, Muralikrishnan S, Ng CT, Yung LY, Bay BH (2010) Nanoparticle-induced pulmonary toxicity. Exp Biol Med 235(9):1025–1033
2 Nanomaterials and Human Health
