199
Okada M, Furuzono T (2012) Hydroxylapatite nanoparticles: fabrication methods and medical applications. Sci Technol Adv Mater 13:064103. https://doi.org/10.1088/1468- 6996/13/6/064103
Oleszczuk P, Jośko I, Skwarek E (2015) Surfactants decrease the toxicity of ZnO, TiO2 and Ni
nanoparticles to Daphnia magna. Ecotoxicology 24:1923–1932. https://doi.org/10.1007/
s10646- 015- 1529- 2
Oliveira JL, Campos EVR, Pereira AES, Pasquoto T, Lima R, Grillo R, de Andrade DJ, dos
Santos FA, Fraceto LF (2018) Zein nanoparticles as eco-friendly carrier systems for botanical repellents aiming sustainable agriculture. J Agric Food Chem 66:1330–1340. https://doi.
org/10.1021/acs.jafc.7b05552
Ong KJ, Felix LC, Boyle D, Ede JD, Ma G, Veinot JGC, Goss GG (2017) Humic acid ameliorates nanoparticle-induced developmental toxicity in zebrafish. Environ Sci Nano 4:127–137.
https://doi.org/10.1039/C6EN00408C
Organisation for Economic Co-operation and Development (2004) Test No. 202: Daphnia sp.
Acute Immobilisation Test. OECD
Oropesa AL, Floro AM, Palma P (2017) Toxic potential of the emerging contaminant nicotine
to the aquatic ecosystem. Environ Sci Pollut Res 24:16605–16616. https://doi.org/10.1007/
s11356- 017- 9084- 4
Ou L, Song B, Liang H, Liu J, Feng X, Deng B, Sun T, Shao L (2016) Toxicity of graphenefamily nanoparticles: a general review of the origins and mechanisms. Part Fibre Toxicol 13:57.
https://doi.org/10.1186/s12989- 016- 0168- y
Park S, An J, Jung I, Piner RD, An SJ, Li X, Velamakanni A, Ruoff RS (2009) Colloidal suspensions of highly reduced graphene oxide in a wide variety of organic solvents. Nano Lett
9:1593–1597. https://doi.org/10.1021/nl803798y
Paulchamy B, Arthi G and Lignesh BD (2015) A simple approach to stepwise synthesis of graphene
oxide nanomaterial. J Nanomed Nanotechnol 6:1. https://doi.org/10.4172/2157- 7439.1000253
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
Pereira FF, Paris EC, Bresolin JD, Foschini MM, Ferreira MD, Corrêa DS (2017) Investigation of
nanotoxicological effects of nanostructured hydroxyapatite to microalgae Pseudokirchneriella
subcapitata.
Ecotoxicol
Environ
Saf
144:138–147.
https://doi.org/10.1016/j.
ecoenv.2017.06.008
Pérez S, Farré M l, Barceló D (2009) Analysis, behavior and ecotoxicity of carbon-based nanomaterials in the aquatic environment. TrAC - Trends Anal Chem 28:820–832. https://doi.
org/10.1016/j.trac.2009.04.001
Petersen EJ, Diamond SA, Kennedy AJ, Goss GG, Ho K, Lead J, Hanna SK, Hartmann NB,
Hund-Rinke K, Mader B, Manier N, Pandard P, Salinas ER, Sayre P (2015) Adapting OECD
Aquatic Toxicity Tests for Use with Manufactured Nanomaterials: Key Issues and Consensus
Recommendations. Environ Sci Technol 49:9532–9547. https://doi.org/10.1021/acs.
est.5b00997
Prabhu YT, Venkateswara Rao K, Sesha Sai V, Pavani T (2017) A facile biosynthesis of copper
nanoparticles: A micro-structural and antibacterial activity investigation. J Saudi Chem Soc
21:180–185. https://doi.org/10.1016/j.jscs.2015.04.002
Prasad R, Bhattacharyya A, Nguyen QD (2014) Nanotechnology in sustainable agriculture:
recent developments, challenges, and perspectives. Front Microbiol 20 June 2017. https://doi.
org/10.3389/fmicb.2017.01014
Prasek J, Drbohlavova J, Chomoucka J, Hubalek J, Jasek O, Adam V, Kizek R (2011) Methods
for carbon nanotubes synthesis—review. J Mater Chem 21:15872. https://doi.org/10.1039/
c1jm12254a
Qi M-L, He K, Huang Z-N, Shahbazian-Yassar R, Xiao G-Y, Lu Y-P, Shokuhfar T (2017)
Hydroxyapatite Fibers: A Review of Synthesis Methods. JOM 69:1354–1360. https://doi.
org/10.1007/s11837- 017- 2427- 2
7 Toxicity of Engineered Nanostructures in Aquatic Environments
Okada M, Furuzono T (2012) Hydroxylapatite nanoparticles: fabrication methods and medical applications. Sci Technol Adv Mater 13:064103. https://doi.org/10.1088/1468- 6996/13/6/064103
Oleszczuk P, Jośko I, Skwarek E (2015) Surfactants decrease the toxicity of ZnO, TiO2 and Ni
nanoparticles to Daphnia magna. Ecotoxicology 24:1923–1932. https://doi.org/10.1007/
s10646- 015- 1529- 2
Oliveira JL, Campos EVR, Pereira AES, Pasquoto T, Lima R, Grillo R, de Andrade DJ, dos
Santos FA, Fraceto LF (2018) Zein nanoparticles as eco-friendly carrier systems for botanical repellents aiming sustainable agriculture. J Agric Food Chem 66:1330–1340. https://doi.
org/10.1021/acs.jafc.7b05552
Ong KJ, Felix LC, Boyle D, Ede JD, Ma G, Veinot JGC, Goss GG (2017) Humic acid ameliorates nanoparticle-induced developmental toxicity in zebrafish. Environ Sci Nano 4:127–137.
https://doi.org/10.1039/C6EN00408C
Organisation for Economic Co-operation and Development (2004) Test No. 202: Daphnia sp.
Acute Immobilisation Test. OECD
Oropesa AL, Floro AM, Palma P (2017) Toxic potential of the emerging contaminant nicotine
to the aquatic ecosystem. Environ Sci Pollut Res 24:16605–16616. https://doi.org/10.1007/
s11356- 017- 9084- 4
Ou L, Song B, Liang H, Liu J, Feng X, Deng B, Sun T, Shao L (2016) Toxicity of graphenefamily nanoparticles: a general review of the origins and mechanisms. Part Fibre Toxicol 13:57.
https://doi.org/10.1186/s12989- 016- 0168- y
Park S, An J, Jung I, Piner RD, An SJ, Li X, Velamakanni A, Ruoff RS (2009) Colloidal suspensions of highly reduced graphene oxide in a wide variety of organic solvents. Nano Lett
9:1593–1597. https://doi.org/10.1021/nl803798y
Paulchamy B, Arthi G and Lignesh BD (2015) A simple approach to stepwise synthesis of graphene
oxide nanomaterial. J Nanomed Nanotechnol 6:1. https://doi.org/10.4172/2157- 7439.1000253
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
Pereira FF, Paris EC, Bresolin JD, Foschini MM, Ferreira MD, Corrêa DS (2017) Investigation of
nanotoxicological effects of nanostructured hydroxyapatite to microalgae Pseudokirchneriella
subcapitata.
Ecotoxicol
Environ
Saf
144:138–147.
https://doi.org/10.1016/j.
ecoenv.2017.06.008
Pérez S, Farré M l, Barceló D (2009) Analysis, behavior and ecotoxicity of carbon-based nanomaterials in the aquatic environment. TrAC - Trends Anal Chem 28:820–832. https://doi.
org/10.1016/j.trac.2009.04.001
Petersen EJ, Diamond SA, Kennedy AJ, Goss GG, Ho K, Lead J, Hanna SK, Hartmann NB,
Hund-Rinke K, Mader B, Manier N, Pandard P, Salinas ER, Sayre P (2015) Adapting OECD
Aquatic Toxicity Tests for Use with Manufactured Nanomaterials: Key Issues and Consensus
Recommendations. Environ Sci Technol 49:9532–9547. https://doi.org/10.1021/acs.
est.5b00997
Prabhu YT, Venkateswara Rao K, Sesha Sai V, Pavani T (2017) A facile biosynthesis of copper
nanoparticles: A micro-structural and antibacterial activity investigation. J Saudi Chem Soc
21:180–185. https://doi.org/10.1016/j.jscs.2015.04.002
Prasad R, Bhattacharyya A, Nguyen QD (2014) Nanotechnology in sustainable agriculture:
recent developments, challenges, and perspectives. Front Microbiol 20 June 2017. https://doi.
org/10.3389/fmicb.2017.01014
Prasek J, Drbohlavova J, Chomoucka J, Hubalek J, Jasek O, Adam V, Kizek R (2011) Methods
for carbon nanotubes synthesis—review. J Mater Chem 21:15872. https://doi.org/10.1039/
c1jm12254a
Qi M-L, He K, Huang Z-N, Shahbazian-Yassar R, Xiao G-Y, Lu Y-P, Shokuhfar T (2017)
Hydroxyapatite Fibers: A Review of Synthesis Methods. JOM 69:1354–1360. https://doi.
org/10.1007/s11837- 017- 2427- 2
7 Toxicity of Engineered Nanostructures in Aquatic Environments
