96
van Pomeren M, Peijnenburg WJGM, Brun NR, Vijver MG (2017b) A novel experimental and
modelling strategy for nanoparticle toxicity testing enabling the use of small quantities. Int J
Environ Res Public Health 14(11) pii: E1348. https://doi.org/10.3390/ijerph14111348
Vasquez ES, Feugang JM, Willard ST, Ryan PL, Walters KB (2016) Bioluminescent magnetic
nanoparticles as potential imaging agents for mammalian spermatozoa. J Nanobiotechnol
14:20. https://doi.org/10.1186/s12951- 016- 0168- y
Wang ZG, Zhou R, Jiang D, Song JE, Xu Q, Si J, Chen YP, Zhou X, Gan L, Li JZ, Zhang H,
Liu B (2015) Toxicity of graphene quantum dots in zebrafish embryo. Biomed Environ Sci
28(5):341–351. https://doi.org/10.3967/bes2015.048
Wang R, Song B, Wu J, Zhang Y, Chen A, Shao L (2018) Potential adverse effects of nanoparticles on the reproductive system. Int J Nanomedicine 13:8487–8506. https://doi.org/10.2147/
IJN.S170723
Wick P, Malek A, Manser P, Meili D, Maeder-Althaus X, Diener L, Diener PA, Zisch A, Krug HF,
von Mandach U (2010) Barrier capacity of human placenta for nanosized materials. Environ
Health Perspect 118(3):432–436. https://doi.org/10.1289/ehp.0901200
Wiecinski PN, Metz KM, King Heiden TC, Louis KM, Mangham AN, Hamers RJ, Heideman W,
Peterson RE, Pedersen JA (2013) Toxicity of oxidatively degraded quantum dots to developing zebrafish (Danio rerio). Environ Sci Technol 47(16):9132–9139. https://doi.org/10.1021/
es304987r
Woźniak A, Grześkowiak BF, Babayevska N, Zalewski T, Drobna M, Woźniak-Budych M,
MWiweger M, Słomski R, Jurga S (2017) ZnO@Gd2O3 core/shell nanoparticles for biomedical applications: physicochemical, in vitro and in vivo characterization. Mater Sci Eng C
80:603–615. https://doi.org/10.1016/j.msec.2017.07.009
Wu Y, Zhou Q (2012) Dose- and time-related changes in aerobic metabolism, chorionic disruption, and oxidative stress in embryonic medaka (Oryzias latipes): underlying mechanisms
for silver nanoparticle developmental toxicity. Aquat Toxicol 124-125:238–246. https://doi.
org/10.1016/j.aquatox.2012.08.009
Wu Y, Zhu R, Zhou Y, Zhang J, Wang W, Sun X, Wu X, Cheng L, Zhang J, Wang S (2015)
Layered double hydroxide nanoparticles promote self-renewal of mouse embryonic stem cells
through the PI3K signaling pathway. Nanoscale 7(25):11102–11114. https://doi.org/10.1039/
c5nr02339d
Xie AW, Binder BYK, Khalil AS, Schmitt SK, Johnson HJ, Zacharias NA, Murphy WL (2017)
Controlled self-assembly of stem cell aggregates instructs pluripotency and lineage bias. Sci
Rep 7(1):14070. https://doi.org/10.1038/s41598- 017- 14325- 9
Xu G, Lin S, Law WC, Roy I, Lin X, Mei S, Ma H, Chen S, Niu H, Wang X (2012) The invasion and reproductive toxicity of QDs-transferrin bioconjugates on Preantral follicle in vitro.
Theranostics 2(7):734–745. https://doi.org/10.7150/thno.4290
Xu B, Chen M, Ji X (2014a) Metabolomic profiles delineate the potential role of glycine in gold
nanorod-induced disruption of mitochondria and blood–testis barrier factors in TM-4 cells.
Nanoscale 6:8265–8273. https://doi.org/10.1039/c8nr90147c. Erratum in: Nanoscale 2018
10(29):14368
Xu Y, Jia XH, Yin XB, He XW, Zhang YK (2014b) Carbon quantum dot stabilized gadolinium
nanoprobe prepared via a one-pot hydrothermal approach for magnetic resonance and fluorescence dual-modality bioimaging. Anal Chem 86(24):12122–12129. https://doi.org/10.1021/
ac503002c
Xu C, Liu Q, Liu H, Zhang C, Shao W, Gu A (2016a) Toxicological assessment of multi-walled carbon nanotubes in vitro: potential mitochondria effects on male reproductive cells. Oncotarget
7(26):39270–39278. https://doi.org/10.18632/oncotarget.9689
Xu G, Lin G, Lin S, Wu N, Deng Y, Feng G, Chen Q, Qu J, Chen D, Chen S, Niu H, Mei S, Yong
KT, Wang X (2016b) The reproductive toxicity of CdSe/ZnS quantum dots on the in vivo
ovarian function and in vitro fertilization. Sci Rep 6:37677. https://doi.org/10.1038/srep37677
A. G. Cattaneo
van Pomeren M, Peijnenburg WJGM, Brun NR, Vijver MG (2017b) A novel experimental and
modelling strategy for nanoparticle toxicity testing enabling the use of small quantities. Int J
Environ Res Public Health 14(11) pii: E1348. https://doi.org/10.3390/ijerph14111348
Vasquez ES, Feugang JM, Willard ST, Ryan PL, Walters KB (2016) Bioluminescent magnetic
nanoparticles as potential imaging agents for mammalian spermatozoa. J Nanobiotechnol
14:20. https://doi.org/10.1186/s12951- 016- 0168- y
Wang ZG, Zhou R, Jiang D, Song JE, Xu Q, Si J, Chen YP, Zhou X, Gan L, Li JZ, Zhang H,
Liu B (2015) Toxicity of graphene quantum dots in zebrafish embryo. Biomed Environ Sci
28(5):341–351. https://doi.org/10.3967/bes2015.048
Wang R, Song B, Wu J, Zhang Y, Chen A, Shao L (2018) Potential adverse effects of nanoparticles on the reproductive system. Int J Nanomedicine 13:8487–8506. https://doi.org/10.2147/
IJN.S170723
Wick P, Malek A, Manser P, Meili D, Maeder-Althaus X, Diener L, Diener PA, Zisch A, Krug HF,
von Mandach U (2010) Barrier capacity of human placenta for nanosized materials. Environ
Health Perspect 118(3):432–436. https://doi.org/10.1289/ehp.0901200
Wiecinski PN, Metz KM, King Heiden TC, Louis KM, Mangham AN, Hamers RJ, Heideman W,
Peterson RE, Pedersen JA (2013) Toxicity of oxidatively degraded quantum dots to developing zebrafish (Danio rerio). Environ Sci Technol 47(16):9132–9139. https://doi.org/10.1021/
es304987r
Woźniak A, Grześkowiak BF, Babayevska N, Zalewski T, Drobna M, Woźniak-Budych M,
MWiweger M, Słomski R, Jurga S (2017) ZnO@Gd2O3 core/shell nanoparticles for biomedical applications: physicochemical, in vitro and in vivo characterization. Mater Sci Eng C
80:603–615. https://doi.org/10.1016/j.msec.2017.07.009
Wu Y, Zhou Q (2012) Dose- and time-related changes in aerobic metabolism, chorionic disruption, and oxidative stress in embryonic medaka (Oryzias latipes): underlying mechanisms
for silver nanoparticle developmental toxicity. Aquat Toxicol 124-125:238–246. https://doi.
org/10.1016/j.aquatox.2012.08.009
Wu Y, Zhu R, Zhou Y, Zhang J, Wang W, Sun X, Wu X, Cheng L, Zhang J, Wang S (2015)
Layered double hydroxide nanoparticles promote self-renewal of mouse embryonic stem cells
through the PI3K signaling pathway. Nanoscale 7(25):11102–11114. https://doi.org/10.1039/
c5nr02339d
Xie AW, Binder BYK, Khalil AS, Schmitt SK, Johnson HJ, Zacharias NA, Murphy WL (2017)
Controlled self-assembly of stem cell aggregates instructs pluripotency and lineage bias. Sci
Rep 7(1):14070. https://doi.org/10.1038/s41598- 017- 14325- 9
Xu G, Lin S, Law WC, Roy I, Lin X, Mei S, Ma H, Chen S, Niu H, Wang X (2012) The invasion and reproductive toxicity of QDs-transferrin bioconjugates on Preantral follicle in vitro.
Theranostics 2(7):734–745. https://doi.org/10.7150/thno.4290
Xu B, Chen M, Ji X (2014a) Metabolomic profiles delineate the potential role of glycine in gold
nanorod-induced disruption of mitochondria and blood–testis barrier factors in TM-4 cells.
Nanoscale 6:8265–8273. https://doi.org/10.1039/c8nr90147c. Erratum in: Nanoscale 2018
10(29):14368
Xu Y, Jia XH, Yin XB, He XW, Zhang YK (2014b) Carbon quantum dot stabilized gadolinium
nanoprobe prepared via a one-pot hydrothermal approach for magnetic resonance and fluorescence dual-modality bioimaging. Anal Chem 86(24):12122–12129. https://doi.org/10.1021/
ac503002c
Xu C, Liu Q, Liu H, Zhang C, Shao W, Gu A (2016a) Toxicological assessment of multi-walled carbon nanotubes in vitro: potential mitochondria effects on male reproductive cells. Oncotarget
7(26):39270–39278. https://doi.org/10.18632/oncotarget.9689
Xu G, Lin G, Lin S, Wu N, Deng Y, Feng G, Chen Q, Qu J, Chen D, Chen S, Niu H, Mei S, Yong
KT, Wang X (2016b) The reproductive toxicity of CdSe/ZnS quantum dots on the in vivo
ovarian function and in vitro fertilization. Sci Rep 6:37677. https://doi.org/10.1038/srep37677
A. G. Cattaneo
