52
Linse S, Cabaleiro-Lago C, Xue WF, Lynch I, Lindman S, Thulin E, Radford SE, Dawson KA (2007)
Nucleation of protein fibrillation by nanoparticles. Proc Natl Acad Sci 104(21):8691–8696
Liu Q, Li H, Xia Q, Lui Y, Xiao K (2015) Role of surface charge in determining the biological
effects of CdSe/ZnS quantum dots. Int J Nanomedicine 10:7073–7088
Loft S (2012) Cardiovascular and other systemic effects of nanoparticles. WHO Workshop on
nanotechnology and human health: scientific evidence and risk governance. Bonn, Germany,
10–11 December 2012
Lomer MCE, Thompson RPH, Powell JJ (2002) Fine and ultrafine particles of the diet: influence on the mucosal immune response and association with Crohn’s disease. Proc Nutr Soc
61:123–130
Lovric J (2005) Differences in subcellular distribution and toxicity of green and red emitting CdTe
quantum dots. J Mol Med 83(5):377–385
Mackevica A, Foss HS (2015) Release of nanomaterials from solid nanocomposites and consumer
exposure assessment – a forward-looking review. Nanotoxicology 14:1–50
Magrez A, Kasa S, Salicio V et al (2006) Cellular toxicity of carbon-based nanomaterials. Nano
Lett 6(6):1121–1125
Maynard AD (2009) Nanoparticle exposure and occupational lung disease – six expert perspectives on a new clinical study. https://2020science.org/2009/08/18/nanoparticle- exposure- andoccupational- lung- disease- six- expert- perspectives- on- a- new- clinical- study/
Mei D, Li X, Wu Q, Sun P (2016) Role of cerium oxide nanoparticles as diesel additives in combustion efficiency improvements and emission reduction. J Energy Eng 142(4)
Monteiro-Riviere NA, Nemanich RJ, Inman AO (2005) Multi-walled carbon nanotube interactions
with human epidermal keratinocytes. Toxicol Lett 155:377–384
Mook W, Nowak J, Perrey C, Carter C, Mukherjee R, Girshick S, McMurry P, Gerberich W (2007)
Compressive stress effects on nanoparticles modulus and fracture. Phys Rev B 75:214112
Moser F, Hildenbrand G, Müller P, Al Saroori A, Biswas A, Bach M, Wenz F, Cremer C, Burger N,
Veldwijk MR, Hausmann M (2016) Cellular uptake of gold nanoparticles and their behavior as
labels for localization, microscopy. Biophys J 110(4):947–953
Muller J, Prozeller D, Ghazaryan A, Kokkinopoulou M, Mailander V, Morsbach S, Landfester K
(2018) Beyond the protein corona – lipids matter for biological response of nanocarriers. Acta
Biomater 71:420–431
Nanotechnology and human health: Scientific evidence and risk governance (2013) Report of
the WHO expert meeting 10–11 December 2012, Bonn, Germany. WHO Regional Office for
Europe, Copenhagen, p 72
Nefzger M, Kreuter J, Voges R, Liehl E, Czok R (1984) Distribution and elimination of polymethylethacrylate nanoparticles after peroral administration to rats. J Pharm Sci 73:1309–1311
Nel A, Xia T, Li N (2006) Toxic potential of materials at the nano level. Science 311(5761):622–627
Nigavekar SS, Sung LY, Llanes M, Mikeland EJ, Areejand L, Theodore S, Becker C (2004) 3H
dendrimer nanoparticles organ/tumor distribution. Pharm Res 21:476–483
Nohynek GJ, Lademann J, Ribaud C, Roberts MS (2007) Grey goo on the skin? Nanotechnology,
cosmetic and sunscreen safety. Crit Rev Toxicol 37(3):251–277
Nurkiewicz TR, Porter DW, Barger M (2006) Systemic microvascular dysfunction and inflammation after pulmonary particulate matter exposure. Environ Health Perspect 114:412–419
O’Neal DP, Hirsch LR, Halas NJ, Payne JD, West JL (2004) Photothermal tumor ablation in mice
using near infrared-absorbing nanoparticles. Cancer Lett 209:171–176
Oberdörster G, Sharp Z, Atudorei V, Gelein R, Kreyling W, Cox C (2004) Translocation of inhaled
ultrafine particles to the brain. Inhal Toxicol 16:437–445
Oberdörster G, Oberdörster E, Oberdörster J (2005) Nanotoxicology: an emerging discipline
evolving from studies of ultrafine particles. Environ Health Perspect 113:823–839
Pal S, Tak YK, Song JM (2007) Does the antibacterial activity of silver nanoparticles depend on
the shape of the nanoparticle? A study of the Gram-negative bacterium Escherichia coli. Appl
Environ Microbiol 73:1712–1720
S. Tekmen and S. Öksüz
Linse S, Cabaleiro-Lago C, Xue WF, Lynch I, Lindman S, Thulin E, Radford SE, Dawson KA (2007)
Nucleation of protein fibrillation by nanoparticles. Proc Natl Acad Sci 104(21):8691–8696
Liu Q, Li H, Xia Q, Lui Y, Xiao K (2015) Role of surface charge in determining the biological
effects of CdSe/ZnS quantum dots. Int J Nanomedicine 10:7073–7088
Loft S (2012) Cardiovascular and other systemic effects of nanoparticles. WHO Workshop on
nanotechnology and human health: scientific evidence and risk governance. Bonn, Germany,
10–11 December 2012
Lomer MCE, Thompson RPH, Powell JJ (2002) Fine and ultrafine particles of the diet: influence on the mucosal immune response and association with Crohn’s disease. Proc Nutr Soc
61:123–130
Lovric J (2005) Differences in subcellular distribution and toxicity of green and red emitting CdTe
quantum dots. J Mol Med 83(5):377–385
Mackevica A, Foss HS (2015) Release of nanomaterials from solid nanocomposites and consumer
exposure assessment – a forward-looking review. Nanotoxicology 14:1–50
Magrez A, Kasa S, Salicio V et al (2006) Cellular toxicity of carbon-based nanomaterials. Nano
Lett 6(6):1121–1125
Maynard AD (2009) Nanoparticle exposure and occupational lung disease – six expert perspectives on a new clinical study. https://2020science.org/2009/08/18/nanoparticle- exposure- andoccupational- lung- disease- six- expert- perspectives- on- a- new- clinical- study/
Mei D, Li X, Wu Q, Sun P (2016) Role of cerium oxide nanoparticles as diesel additives in combustion efficiency improvements and emission reduction. J Energy Eng 142(4)
Monteiro-Riviere NA, Nemanich RJ, Inman AO (2005) Multi-walled carbon nanotube interactions
with human epidermal keratinocytes. Toxicol Lett 155:377–384
Mook W, Nowak J, Perrey C, Carter C, Mukherjee R, Girshick S, McMurry P, Gerberich W (2007)
Compressive stress effects on nanoparticles modulus and fracture. Phys Rev B 75:214112
Moser F, Hildenbrand G, Müller P, Al Saroori A, Biswas A, Bach M, Wenz F, Cremer C, Burger N,
Veldwijk MR, Hausmann M (2016) Cellular uptake of gold nanoparticles and their behavior as
labels for localization, microscopy. Biophys J 110(4):947–953
Muller J, Prozeller D, Ghazaryan A, Kokkinopoulou M, Mailander V, Morsbach S, Landfester K
(2018) Beyond the protein corona – lipids matter for biological response of nanocarriers. Acta
Biomater 71:420–431
Nanotechnology and human health: Scientific evidence and risk governance (2013) Report of
the WHO expert meeting 10–11 December 2012, Bonn, Germany. WHO Regional Office for
Europe, Copenhagen, p 72
Nefzger M, Kreuter J, Voges R, Liehl E, Czok R (1984) Distribution and elimination of polymethylethacrylate nanoparticles after peroral administration to rats. J Pharm Sci 73:1309–1311
Nel A, Xia T, Li N (2006) Toxic potential of materials at the nano level. Science 311(5761):622–627
Nigavekar SS, Sung LY, Llanes M, Mikeland EJ, Areejand L, Theodore S, Becker C (2004) 3H
dendrimer nanoparticles organ/tumor distribution. Pharm Res 21:476–483
Nohynek GJ, Lademann J, Ribaud C, Roberts MS (2007) Grey goo on the skin? Nanotechnology,
cosmetic and sunscreen safety. Crit Rev Toxicol 37(3):251–277
Nurkiewicz TR, Porter DW, Barger M (2006) Systemic microvascular dysfunction and inflammation after pulmonary particulate matter exposure. Environ Health Perspect 114:412–419
O’Neal DP, Hirsch LR, Halas NJ, Payne JD, West JL (2004) Photothermal tumor ablation in mice
using near infrared-absorbing nanoparticles. Cancer Lett 209:171–176
Oberdörster G, Sharp Z, Atudorei V, Gelein R, Kreyling W, Cox C (2004) Translocation of inhaled
ultrafine particles to the brain. Inhal Toxicol 16:437–445
Oberdörster G, Oberdörster E, Oberdörster J (2005) Nanotoxicology: an emerging discipline
evolving from studies of ultrafine particles. Environ Health Perspect 113:823–839
Pal S, Tak YK, Song JM (2007) Does the antibacterial activity of silver nanoparticles depend on
the shape of the nanoparticle? A study of the Gram-negative bacterium Escherichia coli. Appl
Environ Microbiol 73:1712–1720
S. Tekmen and S. Öksüz
