89
Jung AY, Jung KY, Lin C, Yon J-M, Lee JL, Lee BJ, Yun YW, Nam S-Y (2015) Comparison of
teratogenicity induced by nano- and micro-sized particles of zinc oxide in cultured mouse
embryos. Korean J Vet Res 55(2):133–139. https://doi.org/10.14405/kjvr.2015.55.2.133
Karlsson HL, Gliga AR, Calléja FM, Gonçalves CS, Wallinder IO, Vrieling H, Fadeel B, Hendriks
G (2014) Mechanism-based genotoxicity screening of metal oxide nanoparticles using the
ToxTracker panel of reporter cell lines. Part Fibre Toxicol 11:41. https://doi.org/10.1186/
s12989- 014- 0041- 9
Kim KT, Tanguay RL (2014) The role of chorion on toxicity of silver nanoparticles in the embryonic zebrafish assay. Environ Health Toxicol 29:e2014021. https://doi.org/10.5620/eht.
e2014021
Kim TS, Lee SH, Gang GT, Lee YS, Kim SU, Koo DB, Shin MY, Park CK, Lee DS (2010)
Exogenous DNA uptake of boar spermatozoa by a magnetic nanoparticle vector system.
Reprod Domest Anim 45(5):e201–e206. https://doi.org/10.1111/j.1439- 0531.2009.01516.x
Kim KT, Zaikova T, Hutchison JE, Tanguay RL (2013) Gold nanoparticles disrupt zebrafish
eye development and pigmentation. Toxicol Sci 133(2):275–288. https://doi.org/10.1093/
toxsci/kft081
Kim MS, Louis KM, Pedersen JA, Hamers RJ, Peterson RE, Heideman W (2014) Using citratefunctionalized TiO 2 nanoparticles to study the effect of particle size on zebrafish embryo toxicity. Analyst 139:964–972. https://doi.org/10.1039/c3an01966g
Kim YS, Park JS, Park M, Ko MY, Yi SW, Yoon JA, Yang S, Shim SH, Park KH, Song H (2018)
PLGA nanoparticles with multiple modes are a biologically safe nanocarrier for mammalian development and their offspring. Biomaterials 183:43–53. https://doi.org/10.1016/j.
biomaterials.2018.08.042
Kingham E, Oreffo RO (2013) Embryonic and induced pluripotent stem cells: understanding, creating, and exploiting the nano-niche for regenerative medicine. ACS Nano 7(3):1867–1881.
https://doi.org/10.1021/nn3037094
Komatsu T, Tabata M, Kubo-Irie M, Shimizu T, Suzuki K-I, Nihei Y, Takeda K (2008) The effects
of nanoparticles on mouse testis Leydig cells in vitro. Toxicol In Vitro 22(8):1825–1831.
https://doi.org/10.1016/j.tiv.2008.08.009
Komninou ER, Remião MH, Lucas CG, Domingues WB, Basso AC, Jornada DS, Deschamps JC,
Ruver Beck RC, Pohlmann AR, Bordignon V, Seixas FC, Campos VC, Guterres SS, Collares
T (2016) Effects of two types of melatonin-loaded Nanocapsules with distinct supramolecular structures: polymeric (NC) and lipid-Core Nanocapsules (LNC) on bovine embryo culture
model. PLoS One 11(6):e0157561. https://doi.org/10.1371/journal.pone.0157561
Krejcí J, Pacherník J, Hampl A, Dvorák P (2008) In vitro labelling of mouse embryonic stem cells
with SPIO nanoparticles. Gen Physiol Biophys 27(3):164–173
Kurosawa H (2007) Methods for inducing embryoid body formation: in vitro differentiation system
of embryonic stem cells. J Biosci Bioeng 103(5):389–398. https://doi.org/10.1263/jbb.103.389
Lacave JM, Retuerto A, Vicario-Parés U, Gilliland D, Oron M, Cajaraville MP, Orbea A (2016)
Effects of metal-bearing nanoparticles (ag, au, CdS, ZnO, SiO2) on developing zebrafish
embryos. Nanotechnology 27(32):325102. https://doi.org/10.1088/0957- 4484/27/32/325102
Langbeen A, De Porte HF, Bartholomeus E, Leroy JL, Bols PE (2015) Bovine in vitro reproduction models can contribute to the development of (female) fertility preservation strategies.
Theriogenology 84(4):477–489. https://doi.org/10.1016/j.theriogenology.2015.04.009
Lee KJ, Nallathamby PD, Browning LM, Osgood CJ, Xu XH (2007) In vivo imaging of transport
and biocompatibility of single silver nanoparticles in early development of zebrafish embryos.
ACS Nano 1(2):133–143. https://doi.org/10.1021/nn700048y
Lee KJ, Browning LM, Nallathamby PD, Desai T, Cherukuri PK, Xu XH (2012a) In vivo quantitative study of sized-dependent transport and toxicity of single silver nanoparticles using zebrafish embryos. Chem Res Toxicol 25(5):1029–1046. https://doi.org/10.1021/tx300021u
Lee KJ, Nallathamby PD, Browning LM, Desai T, Cherukuri PK, Xu XH (2012b) Single nanoparticle spectroscopy for real-time in vivo quantitative analysis of transport and toxicity of sin3 Safety and Utility of Nanomaterials on Reproduction and Development: An Update…
Jung AY, Jung KY, Lin C, Yon J-M, Lee JL, Lee BJ, Yun YW, Nam S-Y (2015) Comparison of
teratogenicity induced by nano- and micro-sized particles of zinc oxide in cultured mouse
embryos. Korean J Vet Res 55(2):133–139. https://doi.org/10.14405/kjvr.2015.55.2.133
Karlsson HL, Gliga AR, Calléja FM, Gonçalves CS, Wallinder IO, Vrieling H, Fadeel B, Hendriks
G (2014) Mechanism-based genotoxicity screening of metal oxide nanoparticles using the
ToxTracker panel of reporter cell lines. Part Fibre Toxicol 11:41. https://doi.org/10.1186/
s12989- 014- 0041- 9
Kim KT, Tanguay RL (2014) The role of chorion on toxicity of silver nanoparticles in the embryonic zebrafish assay. Environ Health Toxicol 29:e2014021. https://doi.org/10.5620/eht.
e2014021
Kim TS, Lee SH, Gang GT, Lee YS, Kim SU, Koo DB, Shin MY, Park CK, Lee DS (2010)
Exogenous DNA uptake of boar spermatozoa by a magnetic nanoparticle vector system.
Reprod Domest Anim 45(5):e201–e206. https://doi.org/10.1111/j.1439- 0531.2009.01516.x
Kim KT, Zaikova T, Hutchison JE, Tanguay RL (2013) Gold nanoparticles disrupt zebrafish
eye development and pigmentation. Toxicol Sci 133(2):275–288. https://doi.org/10.1093/
toxsci/kft081
Kim MS, Louis KM, Pedersen JA, Hamers RJ, Peterson RE, Heideman W (2014) Using citratefunctionalized TiO 2 nanoparticles to study the effect of particle size on zebrafish embryo toxicity. Analyst 139:964–972. https://doi.org/10.1039/c3an01966g
Kim YS, Park JS, Park M, Ko MY, Yi SW, Yoon JA, Yang S, Shim SH, Park KH, Song H (2018)
PLGA nanoparticles with multiple modes are a biologically safe nanocarrier for mammalian development and their offspring. Biomaterials 183:43–53. https://doi.org/10.1016/j.
biomaterials.2018.08.042
Kingham E, Oreffo RO (2013) Embryonic and induced pluripotent stem cells: understanding, creating, and exploiting the nano-niche for regenerative medicine. ACS Nano 7(3):1867–1881.
https://doi.org/10.1021/nn3037094
Komatsu T, Tabata M, Kubo-Irie M, Shimizu T, Suzuki K-I, Nihei Y, Takeda K (2008) The effects
of nanoparticles on mouse testis Leydig cells in vitro. Toxicol In Vitro 22(8):1825–1831.
https://doi.org/10.1016/j.tiv.2008.08.009
Komninou ER, Remião MH, Lucas CG, Domingues WB, Basso AC, Jornada DS, Deschamps JC,
Ruver Beck RC, Pohlmann AR, Bordignon V, Seixas FC, Campos VC, Guterres SS, Collares
T (2016) Effects of two types of melatonin-loaded Nanocapsules with distinct supramolecular structures: polymeric (NC) and lipid-Core Nanocapsules (LNC) on bovine embryo culture
model. PLoS One 11(6):e0157561. https://doi.org/10.1371/journal.pone.0157561
Krejcí J, Pacherník J, Hampl A, Dvorák P (2008) In vitro labelling of mouse embryonic stem cells
with SPIO nanoparticles. Gen Physiol Biophys 27(3):164–173
Kurosawa H (2007) Methods for inducing embryoid body formation: in vitro differentiation system
of embryonic stem cells. J Biosci Bioeng 103(5):389–398. https://doi.org/10.1263/jbb.103.389
Lacave JM, Retuerto A, Vicario-Parés U, Gilliland D, Oron M, Cajaraville MP, Orbea A (2016)
Effects of metal-bearing nanoparticles (ag, au, CdS, ZnO, SiO2) on developing zebrafish
embryos. Nanotechnology 27(32):325102. https://doi.org/10.1088/0957- 4484/27/32/325102
Langbeen A, De Porte HF, Bartholomeus E, Leroy JL, Bols PE (2015) Bovine in vitro reproduction models can contribute to the development of (female) fertility preservation strategies.
Theriogenology 84(4):477–489. https://doi.org/10.1016/j.theriogenology.2015.04.009
Lee KJ, Nallathamby PD, Browning LM, Osgood CJ, Xu XH (2007) In vivo imaging of transport
and biocompatibility of single silver nanoparticles in early development of zebrafish embryos.
ACS Nano 1(2):133–143. https://doi.org/10.1021/nn700048y
Lee KJ, Browning LM, Nallathamby PD, Desai T, Cherukuri PK, Xu XH (2012a) In vivo quantitative study of sized-dependent transport and toxicity of single silver nanoparticles using zebrafish embryos. Chem Res Toxicol 25(5):1029–1046. https://doi.org/10.1021/tx300021u
Lee KJ, Nallathamby PD, Browning LM, Desai T, Cherukuri PK, Xu XH (2012b) Single nanoparticle spectroscopy for real-time in vivo quantitative analysis of transport and toxicity of sin3 Safety and Utility of Nanomaterials on Reproduction and Development: An Update…
