93
fication of specific exposure biomarkers. Curr Protoc Toxicol 74:1.14.1–1.14.13. https://doi.
org/10.1002/cptx.34
Pecoraro R, D’Angelo D, Filice S, Scalese S, Capparucci F, Marino F, Iaria C, Guerriero G, Tibullo
D, Scalisi EM, Salvaggio A, Nicotera I, Brundo MV (2018) Toxicity evaluation of graphene
oxide and Titania loaded Nafion membranes in zebrafish. Front Physiol 8:1039. https://doi.
org/10.3389/fphys.2017.01039
Piersma AH (2011) Development and implementation of alternative methods in reproductive toxicology. RIVM report 340700005/2011, Ministry of Health, welfare and sports, NL. https://
www.rivm.nl/bibliotheek/rapporten/340700005.pdf. Accessed 2 Nov 2019
Pöttler M, Staicu A, Zaloga J, Unterweger H, Weigel W, Schreiber E, Hofmann S, Wiest I, Jeschke
U, Alexiou C. Janko C (2015) Genotoxicity of superparamagnetic Iron oxide nanoparticles in
granulosa cells. Int J Mol Sci 16: 26280–26290; doi:https://doi.org/10.3390/ijms161125960
Pöttler M, Hofmann S, Dürr S, Unterweger H, Wiest I, Zaloga J, Alexiou C, Jeschke U, Janko C
(2016) Effect of BSA-coated superparamagnetic Iron oxide nanoparticles on granulosa cells.
Anticancer Res 36(6):3147–3154
Poulsen MS, Mose T, Maroun LL, Mathiesen L, Knudsen LE, Rytting E (2015) Kinetics of silica
nanoparticles in the human placenta. Nanotoxicology 9(Suppl.1):79–86. https://doi.org/10.310
9/17435390.2013.812259
Powers CM, Slotkin TA, Seidler FJ, Badireddy AR, Padilla S (2011) Silver nanoparticles Alter
zebrafish development and larval behavior: distinct roles for particle size, coating and composition. Neurotoxicol Teratol 33(6):708–714. https://doi.org/10.1016/j.ntt.2011.02.002
Préaubert L, Courbiere B, Achard V, Tassistro V, Greco F, Orsiere T, Bottero JY, Rose J,
Auffan M, Perrin J (2016) Cerium dioxide nanoparticles affect in vitro fertilization in mice.
Nanotoxicology 10(1):111–117. https://doi.org/10.3109/17435390.2015.1030792
Préaubert L, Tassistro V, Auffan M, Sari-Minodier I, Rose J, Courbiere B, Perrin J (2018) Very
low concentration of cerium dioxide nanoparticles induce DNA damage, but no loss of vitality,
in human spermatozoa. Toxicol In Vitro 50:236–241. https://doi.org/10.1016/j.tiv.2018.03.013
Quinn MC, McGregor SB, Stanton JL, Hessian PA, Gillett WR, Green DP (2006) Purification of
granulosa cells from human ovarian follicular fluid using granulosa cell aggregates. Reprod
Fertil Dev 18(5):501–508. https://doi.org/10.1071/rd05051
Rafeeqi T, Kaul G (2010) Carbon nanotubes as a scaffold for spermatogonial cell maintenance. J
Biomed Nanotechnol 6(6):710–717. https://doi.org/10.1166/jbn.2010.1167
Rajanahalli P, Stucke CJ, Hong Y (2015) The effects of silver nanoparticles on mouse embryonic
stem cell self-renewal and proliferation. Toxicol Rep 2:758–764. https://doi.org/10.1016/j.
toxrep.2015.05.005
Ramachandran R, Krishnaraj C, Sivakumar AS, Prasannakumar P, Kumar VKA, Shim KS, Song
C-G, Yun SI (2017) Anticancer activity of biologically synthesized silver and gold nanoparticles on mouse myoblast cancer cells and their toxicity against embryonic zebrafish. Mater Sci
Eng C 73:674–683. https://doi.org/10.1016/j.msec.2016.12.110
Rath D, Tiedemann D, Gamrad L, Johnson LA, Klein S, Kues W, Mancini R, Rehbock C, Taylor
U, Barcikowski S (2015) Sex-sorted boar sperm – an update on related production methods.
Reprod Domest Anim 50(Suppl 2):56–60. https://doi.org/10.1111/rda.12572
Remião MH, Lucas CG, Domingues WB, Silveira T, Barther NN, Komninou ER, Basso AC,
Jornada DS, Beck RC, Pohlmann AR, Junior AS, Seixas FK, Campos VF, Guterres SS,
Collares T (2016) Melatonin delivery by nanocapsules during in vitro bovine oocyte maturation decreased the reactive oxygen species of oocytes and embryos. Reprod Toxicol 63:70–81.
https://doi.org/10.1016/j.reprotox.2016.05.016
Remião MH, Segatto NV, Pohlmann A, Guterres SS, Seixas FK, Collares T (2017) The potential of nanotechnology in medically assisted reproduction. Front Pharmacol 8:994. https://doi.
org/10.3389/fphar.2017.00994. (published online 2018)
Revel M, Châtel A, Mouneyrac C (2017) Omics tools: new challenges in aquatic nanotoxicology?
Aquat Toxicol 193:72–85. https://doi.org/10.1016/j.aquatox.2017.10.005
3 Safety and Utility of Nanomaterials on Reproduction and Development: An Update…
fication of specific exposure biomarkers. Curr Protoc Toxicol 74:1.14.1–1.14.13. https://doi.
org/10.1002/cptx.34
Pecoraro R, D’Angelo D, Filice S, Scalese S, Capparucci F, Marino F, Iaria C, Guerriero G, Tibullo
D, Scalisi EM, Salvaggio A, Nicotera I, Brundo MV (2018) Toxicity evaluation of graphene
oxide and Titania loaded Nafion membranes in zebrafish. Front Physiol 8:1039. https://doi.
org/10.3389/fphys.2017.01039
Piersma AH (2011) Development and implementation of alternative methods in reproductive toxicology. RIVM report 340700005/2011, Ministry of Health, welfare and sports, NL. https://
www.rivm.nl/bibliotheek/rapporten/340700005.pdf. Accessed 2 Nov 2019
Pöttler M, Staicu A, Zaloga J, Unterweger H, Weigel W, Schreiber E, Hofmann S, Wiest I, Jeschke
U, Alexiou C. Janko C (2015) Genotoxicity of superparamagnetic Iron oxide nanoparticles in
granulosa cells. Int J Mol Sci 16: 26280–26290; doi:https://doi.org/10.3390/ijms161125960
Pöttler M, Hofmann S, Dürr S, Unterweger H, Wiest I, Zaloga J, Alexiou C, Jeschke U, Janko C
(2016) Effect of BSA-coated superparamagnetic Iron oxide nanoparticles on granulosa cells.
Anticancer Res 36(6):3147–3154
Poulsen MS, Mose T, Maroun LL, Mathiesen L, Knudsen LE, Rytting E (2015) Kinetics of silica
nanoparticles in the human placenta. Nanotoxicology 9(Suppl.1):79–86. https://doi.org/10.310
9/17435390.2013.812259
Powers CM, Slotkin TA, Seidler FJ, Badireddy AR, Padilla S (2011) Silver nanoparticles Alter
zebrafish development and larval behavior: distinct roles for particle size, coating and composition. Neurotoxicol Teratol 33(6):708–714. https://doi.org/10.1016/j.ntt.2011.02.002
Préaubert L, Courbiere B, Achard V, Tassistro V, Greco F, Orsiere T, Bottero JY, Rose J,
Auffan M, Perrin J (2016) Cerium dioxide nanoparticles affect in vitro fertilization in mice.
Nanotoxicology 10(1):111–117. https://doi.org/10.3109/17435390.2015.1030792
Préaubert L, Tassistro V, Auffan M, Sari-Minodier I, Rose J, Courbiere B, Perrin J (2018) Very
low concentration of cerium dioxide nanoparticles induce DNA damage, but no loss of vitality,
in human spermatozoa. Toxicol In Vitro 50:236–241. https://doi.org/10.1016/j.tiv.2018.03.013
Quinn MC, McGregor SB, Stanton JL, Hessian PA, Gillett WR, Green DP (2006) Purification of
granulosa cells from human ovarian follicular fluid using granulosa cell aggregates. Reprod
Fertil Dev 18(5):501–508. https://doi.org/10.1071/rd05051
Rafeeqi T, Kaul G (2010) Carbon nanotubes as a scaffold for spermatogonial cell maintenance. J
Biomed Nanotechnol 6(6):710–717. https://doi.org/10.1166/jbn.2010.1167
Rajanahalli P, Stucke CJ, Hong Y (2015) The effects of silver nanoparticles on mouse embryonic
stem cell self-renewal and proliferation. Toxicol Rep 2:758–764. https://doi.org/10.1016/j.
toxrep.2015.05.005
Ramachandran R, Krishnaraj C, Sivakumar AS, Prasannakumar P, Kumar VKA, Shim KS, Song
C-G, Yun SI (2017) Anticancer activity of biologically synthesized silver and gold nanoparticles on mouse myoblast cancer cells and their toxicity against embryonic zebrafish. Mater Sci
Eng C 73:674–683. https://doi.org/10.1016/j.msec.2016.12.110
Rath D, Tiedemann D, Gamrad L, Johnson LA, Klein S, Kues W, Mancini R, Rehbock C, Taylor
U, Barcikowski S (2015) Sex-sorted boar sperm – an update on related production methods.
Reprod Domest Anim 50(Suppl 2):56–60. https://doi.org/10.1111/rda.12572
Remião MH, Lucas CG, Domingues WB, Silveira T, Barther NN, Komninou ER, Basso AC,
Jornada DS, Beck RC, Pohlmann AR, Junior AS, Seixas FK, Campos VF, Guterres SS,
Collares T (2016) Melatonin delivery by nanocapsules during in vitro bovine oocyte maturation decreased the reactive oxygen species of oocytes and embryos. Reprod Toxicol 63:70–81.
https://doi.org/10.1016/j.reprotox.2016.05.016
Remião MH, Segatto NV, Pohlmann A, Guterres SS, Seixas FK, Collares T (2017) The potential of nanotechnology in medically assisted reproduction. Front Pharmacol 8:994. https://doi.
org/10.3389/fphar.2017.00994. (published online 2018)
Revel M, Châtel A, Mouneyrac C (2017) Omics tools: new challenges in aquatic nanotoxicology?
Aquat Toxicol 193:72–85. https://doi.org/10.1016/j.aquatox.2017.10.005
3 Safety and Utility of Nanomaterials on Reproduction and Development: An Update…
