118
Erhayem M, Sohn M (2014) Effect of humic acid source on humic acid adsorption onto titanium dioxide nanoparticles. Sci Total Environ 470:92–98. https://doi.org/10.1016/j.
scitotenv.2013.08.038
Fajardo C, Ortíz LT, Rodríguez-Membibre ML, Nande M, Lobo MC, Martin M (2012) Assessing
the impact of zero-valent iron (ZVI) nanotechnology on soil microbial structure and functionality: a molecular approach. Chemosphere 86(8):802–808. https://doi.org/10.1016/j.
chemosphere.2011.11.041
Fang X, Yu R, Li B, Somasundaran P, Chandran K (2010) Stresses exerted by ZnO, CeO2 and anatase TiO2 nanoparticles on the Nitrosomonas europaea. J Colloid Interface Sci 348(2):329–334.
https://doi.org/10.1016/j.jcis.2010.04.075
Farkas J, Peter H, Ciesielski TM, Thomas KV, Sommaruga R, Salvenmoser W, Weyhenmeyer GA,
Tranvik LJ, Jenssen BM (2015) Impact of TiO2 nanoparticles on freshwater bacteria from three
Swedish lakes. Sci Total Environ 535:85–93. https://doi.org/10.1016/j.scitotenv.2015.03.043
Franklin NM, Rogers NJ, Apte SC, Batley GE, Gadd GE, Casey PS (2007) Comparative toxicity
of nanoparticulate ZnO, bulk ZnO, and ZnCl2 to a freshwater microalga (Pseudokirchneriella
subcapitata): the importance of particle solubility. Environ Sci Technol 41(24):8484–8490.
https://doi.org/10.1021/es071445r
Gajjar P, Pettee B, Britt DW, Huang W, Johnson WP, Anderson AJ (2009) Antimicrobial activities of commercial nanoparticles against an environmental soil microbe, Pseudomonas putida
KT2440. J Biol Eng 3(1):9. https://doi.org/10.1186/1754- 1611- 3- 9
Galindo TPS, Pereira R, Freitas AC, Santos-Rocha TAP, Rasteiro MG, Antunes F, Rodrigues D,
Soares AMVM, Gonçalves F, Duarte AC, Lopes I (2013) Toxicity of organic and inorganic
nanoparticles to four species of white-rot fungi. Sci Total Environ 458:290–297. https://doi.
org/10.1016/j.scitotenv.2013.04.019
Ge Y, Schimel JP, Holden PA (2011) Evidence for negative effects of TiO2 and ZnO nanoparticles
on soil bacterial communities. Environ Sci Technol 45(4):1659–1664
Ge Y, Schimel JP, Holden PA (2012) The identification of soil bacteria susceptible to TiO2
and ZnO nanoparticles. Appl Environ Microbiol:AEM-00941. https://doi.org/10.1128/
AEM.00941- 12
Ge Y, Shen C, Wang Y, Sun YQ, Schimel JP, Gardea-Torresdey JL, Holden PA (2018)
Carbonaceous nanomaterials have higher effects on soybean rhizosphere prokaryotic communities during the reproductive growth phase than during vegetative growth. Environ Sci Technol
52(11):6636–6646. https://doi.org/10.1021/acs.est.8b00937
Goyal D, Zhang XJ, Rooney‐Varga JN (2010) Impacts of single‐walled carbon nanotubes on
microbial community structure in activated sludge. Lett Appl Microbiol 51(4):428–435
Gou N, Onnis-Hayden A, Gu AZ (2010) Mechanistic toxicity assessment of nanomaterials by
whole-cell-array stress genes expression analysis. Environ Sci Technol 44(15):5964–5970.
https://doi.org/10.1021/es100679f
Hamidat M, Barakat M, Ortet P, Chanéac C, Rose J, Bottero JY, Heulin T, Achouak W, Santaella
C (2016) Design defines the effects of Nanoceria at a Low dose on soil microbiota and the
potentiation of impacts by the canola plant. Environ Sci Technol 50(13):6892–6901. https://
doi.org/10.1021/acs.est.6b01056
Hänsch M, Emmerling C (2010) Effects of silver nanoparticles on the microbiota and enzyme
activity in soil. J Plant Nutr Soil Sci 173(4):554–558. https://doi.org/10.1002/jpln.200900358
Hardman R (2006) A toxicologic review of quantum dots: toxicity depends on physicochemical and environmental factors. Environ Health Perspect 114(2):165. https://doi.org/10.1289/
ehp.8284
He S, Feng Y, Ren H, Zhang Y, Gu N, Lin X (2011) The impact of iron oxide magnetic nanoparticles
on the soil bacterial community. J Soils Sediments 11(8):1408–1417. https://doi.org/10.1007/
s11368- 011- 0415- 7
Heggelund LR, Diez-Ortiz M, Lofts S, Lahive E, Jurkschat K, Wojnarowicz J, Cedergreen N,
Spurgeon D, Svendsen C (2014) Soil pH effects on the comparative toxicity of dissolved
H. Chhipa
Erhayem M, Sohn M (2014) Effect of humic acid source on humic acid adsorption onto titanium dioxide nanoparticles. Sci Total Environ 470:92–98. https://doi.org/10.1016/j.
scitotenv.2013.08.038
Fajardo C, Ortíz LT, Rodríguez-Membibre ML, Nande M, Lobo MC, Martin M (2012) Assessing
the impact of zero-valent iron (ZVI) nanotechnology on soil microbial structure and functionality: a molecular approach. Chemosphere 86(8):802–808. https://doi.org/10.1016/j.
chemosphere.2011.11.041
Fang X, Yu R, Li B, Somasundaran P, Chandran K (2010) Stresses exerted by ZnO, CeO2 and anatase TiO2 nanoparticles on the Nitrosomonas europaea. J Colloid Interface Sci 348(2):329–334.
https://doi.org/10.1016/j.jcis.2010.04.075
Farkas J, Peter H, Ciesielski TM, Thomas KV, Sommaruga R, Salvenmoser W, Weyhenmeyer GA,
Tranvik LJ, Jenssen BM (2015) Impact of TiO2 nanoparticles on freshwater bacteria from three
Swedish lakes. Sci Total Environ 535:85–93. https://doi.org/10.1016/j.scitotenv.2015.03.043
Franklin NM, Rogers NJ, Apte SC, Batley GE, Gadd GE, Casey PS (2007) Comparative toxicity
of nanoparticulate ZnO, bulk ZnO, and ZnCl2 to a freshwater microalga (Pseudokirchneriella
subcapitata): the importance of particle solubility. Environ Sci Technol 41(24):8484–8490.
https://doi.org/10.1021/es071445r
Gajjar P, Pettee B, Britt DW, Huang W, Johnson WP, Anderson AJ (2009) Antimicrobial activities of commercial nanoparticles against an environmental soil microbe, Pseudomonas putida
KT2440. J Biol Eng 3(1):9. https://doi.org/10.1186/1754- 1611- 3- 9
Galindo TPS, Pereira R, Freitas AC, Santos-Rocha TAP, Rasteiro MG, Antunes F, Rodrigues D,
Soares AMVM, Gonçalves F, Duarte AC, Lopes I (2013) Toxicity of organic and inorganic
nanoparticles to four species of white-rot fungi. Sci Total Environ 458:290–297. https://doi.
org/10.1016/j.scitotenv.2013.04.019
Ge Y, Schimel JP, Holden PA (2011) Evidence for negative effects of TiO2 and ZnO nanoparticles
on soil bacterial communities. Environ Sci Technol 45(4):1659–1664
Ge Y, Schimel JP, Holden PA (2012) The identification of soil bacteria susceptible to TiO2
and ZnO nanoparticles. Appl Environ Microbiol:AEM-00941. https://doi.org/10.1128/
AEM.00941- 12
Ge Y, Shen C, Wang Y, Sun YQ, Schimel JP, Gardea-Torresdey JL, Holden PA (2018)
Carbonaceous nanomaterials have higher effects on soybean rhizosphere prokaryotic communities during the reproductive growth phase than during vegetative growth. Environ Sci Technol
52(11):6636–6646. https://doi.org/10.1021/acs.est.8b00937
Goyal D, Zhang XJ, Rooney‐Varga JN (2010) Impacts of single‐walled carbon nanotubes on
microbial community structure in activated sludge. Lett Appl Microbiol 51(4):428–435
Gou N, Onnis-Hayden A, Gu AZ (2010) Mechanistic toxicity assessment of nanomaterials by
whole-cell-array stress genes expression analysis. Environ Sci Technol 44(15):5964–5970.
https://doi.org/10.1021/es100679f
Hamidat M, Barakat M, Ortet P, Chanéac C, Rose J, Bottero JY, Heulin T, Achouak W, Santaella
C (2016) Design defines the effects of Nanoceria at a Low dose on soil microbiota and the
potentiation of impacts by the canola plant. Environ Sci Technol 50(13):6892–6901. https://
doi.org/10.1021/acs.est.6b01056
Hänsch M, Emmerling C (2010) Effects of silver nanoparticles on the microbiota and enzyme
activity in soil. J Plant Nutr Soil Sci 173(4):554–558. https://doi.org/10.1002/jpln.200900358
Hardman R (2006) A toxicologic review of quantum dots: toxicity depends on physicochemical and environmental factors. Environ Health Perspect 114(2):165. https://doi.org/10.1289/
ehp.8284
He S, Feng Y, Ren H, Zhang Y, Gu N, Lin X (2011) The impact of iron oxide magnetic nanoparticles
on the soil bacterial community. J Soils Sediments 11(8):1408–1417. https://doi.org/10.1007/
s11368- 011- 0415- 7
Heggelund LR, Diez-Ortiz M, Lofts S, Lahive E, Jurkschat K, Wojnarowicz J, Cedergreen N,
Spurgeon D, Svendsen C (2014) Soil pH effects on the comparative toxicity of dissolved
H. Chhipa
