Ma X, Geiser-Lee J, Deng Y, Kolmakov A (2010) Interactions between engineered nanoparticles
(ENPs) and plants: phytotoxicity, uptake and accumulation. Sci Total Environ 408:3053–3061
Macé C, Desrocher S, Gheorghiu F, Kane A, Pupeza M, Cernik M, Kvapil P, Venkatakrishnan R,
Zhang W (2006) Nanotechnology and groundwater remediation: a step forward in technology
understanding. Remediation 16:23–33
Mackenzie K, Bleyl S, Kopinke FD, Doose H, Bruns J (2016) Carbo-Iron as improvement of the
nanoiron technology: from laboratory design to the field test. Sci Total Environ
563-564:641–648
Malekian R, Abedi-Koupai J, Eslamian SS (2011) Influences of clinoptilolite and surfactantmodified clinoptilolite zeolite on nitrate leaching and plant growth. J Hazard Mater
185:970–976
Marzbani P, Afrouzi YM, Omidvar A (2015) The effect of nano-zinc oxide on particleboard decay
resistance. Maderas Cienc Tecnol 17:63–68
Medina-Pérez G, Fernández-Luqueño F, Vazquez-Nuñez E, López-Valdez F, Prieto-Mendez J,
Madariaga-Navarrete A, Miranda-Arámbula M (2019) Remediating polluted soils using
nanotechnologies: environmental benefits and risks. Pol J Environ Stud 28:1013–1030
Miller G, Senjen R (2008) Out of the laboratory and on to our plates. Nanotechnology in food &
agriculture. In: Friends of the Earth, Australia, Europe & U.S.A (ed). Washington
Miralles P, Church TL, Harris AT (2012) Toxicity, uptake, and translocation of engineered
nanoparticles in vascular plants. Environ Sci Technol 46:9224–9239
Mishra S, Singh BR, Singh A (2014) Biofabricated silver nanoparticles act as a strong fungicide
against Bipolaris sorokiniana causing spot blotch disease in wheat. PLoS One 9:97881
Monica RC, Cremonini R (2009) Nanoparticles and higher plants. Caryologia 62:161–165
Morones JR, Elechiguerra JL, Camacho A, Holt K, Kouri JB, Ramirez JT, Yacaman MJ (2005) The
bactericidal effect of silver nanoparticles. J Nanotechnol 16:2346–2353
Mukherjee A, Peralta-Videa JR, Bandyopadhyay S, Rico CM, Zhao L, Gardea- Torresdey JL
(2014) Physiological effects of nanoparticulate ZnO in green peas (Pisum sativum L.) cultivated
in soil. Metallomics 6:132–138
Mukhopadhyay SS (2014) Nanotechnology in agriculture: prospects and constraints. Nanotechnol
Sci Appl 7:63–71
Musante C, White JC (2012) Toxicity of silver and copper to Cucurbita pepo: differential effects of
nano and bulk- size particles. Environ Toxicol 27:510–517
Nair PMG, Chung IM (2014) Physiological and molecular level effects of silver nanoparticles
exposure in rice (Oryza sativa L.) seedlings. Chemosphere 112:105–113
Nair R, Varghese SH, Nair BG, Maekawa T, Yoshida Y, Kumar DS (2010) Nanoparticulate
material delivery to plants. Plant Sci 179:154–163
Nair PMG, Kim SH, Chung IM (2014) Copper oxide nanoparticle toxicity in mung bean (Vigna
radiata L.) seedlings: physiological and molecular level responses of in vitro grown plants. Acta
Physiol Plant 36:2947–2958
Nakata K, Fujishima A (2012) TiO 2 photocatalysis: design and applications. J Photochem
Photobiol 13:169–189
Narayanan KB, Park HH (2014) Antifungal activity of silver nanoparticles synthesized using turnip
leaf extract (Brassica rapa L.) against wood rotting pathogens. Eur J Plant Pathol 140:185–192
Navarro E, Baun A, Behra R, Hartmann NB, Filser J, Miao A, Quigg A, Santschi PH, Sigg L (2008)
Environmental behavior and ecotoxicity of engineered nanoparticles to algae, plants, and fungi.
Ecotoxicology 17:372–386
Navarro DA, Bisson MA, Aga DS (2012) Investigating uptake of water-dispersible CdSe/ZnS
quantum dot nanoparticles by Arabidopsis thaliana plants. J Hazard Mater 211:427–435
Nuruzzaman M, Rahman MM, Liu Y, Naidu R (2016) Nanoencapsulation, nano-guard for
pesticides: a new window for safe application. J Agric Food Chem 64:1447–1483
Oancea S, Padureanu S, Oancea AV (2009) Growth dynamics of corn plants during anionic clays
action. Lucrari Stiintifice Seria Agronomie 52:212–217
Oerke EC (2006) Crop losses to pests. J Agric Sci 144:31–43
28
A. Gorczyca et al.
(ENPs) and plants: phytotoxicity, uptake and accumulation. Sci Total Environ 408:3053–3061
Macé C, Desrocher S, Gheorghiu F, Kane A, Pupeza M, Cernik M, Kvapil P, Venkatakrishnan R,
Zhang W (2006) Nanotechnology and groundwater remediation: a step forward in technology
understanding. Remediation 16:23–33
Mackenzie K, Bleyl S, Kopinke FD, Doose H, Bruns J (2016) Carbo-Iron as improvement of the
nanoiron technology: from laboratory design to the field test. Sci Total Environ
563-564:641–648
Malekian R, Abedi-Koupai J, Eslamian SS (2011) Influences of clinoptilolite and surfactantmodified clinoptilolite zeolite on nitrate leaching and plant growth. J Hazard Mater
185:970–976
Marzbani P, Afrouzi YM, Omidvar A (2015) The effect of nano-zinc oxide on particleboard decay
resistance. Maderas Cienc Tecnol 17:63–68
Medina-Pérez G, Fernández-Luqueño F, Vazquez-Nuñez E, López-Valdez F, Prieto-Mendez J,
Madariaga-Navarrete A, Miranda-Arámbula M (2019) Remediating polluted soils using
nanotechnologies: environmental benefits and risks. Pol J Environ Stud 28:1013–1030
Miller G, Senjen R (2008) Out of the laboratory and on to our plates. Nanotechnology in food &
agriculture. In: Friends of the Earth, Australia, Europe & U.S.A (ed). Washington
Miralles P, Church TL, Harris AT (2012) Toxicity, uptake, and translocation of engineered
nanoparticles in vascular plants. Environ Sci Technol 46:9224–9239
Mishra S, Singh BR, Singh A (2014) Biofabricated silver nanoparticles act as a strong fungicide
against Bipolaris sorokiniana causing spot blotch disease in wheat. PLoS One 9:97881
Monica RC, Cremonini R (2009) Nanoparticles and higher plants. Caryologia 62:161–165
Morones JR, Elechiguerra JL, Camacho A, Holt K, Kouri JB, Ramirez JT, Yacaman MJ (2005) The
bactericidal effect of silver nanoparticles. J Nanotechnol 16:2346–2353
Mukherjee A, Peralta-Videa JR, Bandyopadhyay S, Rico CM, Zhao L, Gardea- Torresdey JL
(2014) Physiological effects of nanoparticulate ZnO in green peas (Pisum sativum L.) cultivated
in soil. Metallomics 6:132–138
Mukhopadhyay SS (2014) Nanotechnology in agriculture: prospects and constraints. Nanotechnol
Sci Appl 7:63–71
Musante C, White JC (2012) Toxicity of silver and copper to Cucurbita pepo: differential effects of
nano and bulk- size particles. Environ Toxicol 27:510–517
Nair PMG, Chung IM (2014) Physiological and molecular level effects of silver nanoparticles
exposure in rice (Oryza sativa L.) seedlings. Chemosphere 112:105–113
Nair R, Varghese SH, Nair BG, Maekawa T, Yoshida Y, Kumar DS (2010) Nanoparticulate
material delivery to plants. Plant Sci 179:154–163
Nair PMG, Kim SH, Chung IM (2014) Copper oxide nanoparticle toxicity in mung bean (Vigna
radiata L.) seedlings: physiological and molecular level responses of in vitro grown plants. Acta
Physiol Plant 36:2947–2958
Nakata K, Fujishima A (2012) TiO 2 photocatalysis: design and applications. J Photochem
Photobiol 13:169–189
Narayanan KB, Park HH (2014) Antifungal activity of silver nanoparticles synthesized using turnip
leaf extract (Brassica rapa L.) against wood rotting pathogens. Eur J Plant Pathol 140:185–192
Navarro E, Baun A, Behra R, Hartmann NB, Filser J, Miao A, Quigg A, Santschi PH, Sigg L (2008)
Environmental behavior and ecotoxicity of engineered nanoparticles to algae, plants, and fungi.
Ecotoxicology 17:372–386
Navarro DA, Bisson MA, Aga DS (2012) Investigating uptake of water-dispersible CdSe/ZnS
quantum dot nanoparticles by Arabidopsis thaliana plants. J Hazard Mater 211:427–435
Nuruzzaman M, Rahman MM, Liu Y, Naidu R (2016) Nanoencapsulation, nano-guard for
pesticides: a new window for safe application. J Agric Food Chem 64:1447–1483
Oancea S, Padureanu S, Oancea AV (2009) Growth dynamics of corn plants during anionic clays
action. Lucrari Stiintifice Seria Agronomie 52:212–217
Oerke EC (2006) Crop losses to pests. J Agric Sci 144:31–43
28
A. Gorczyca et al.
