283
Marie T, Melanie A, Lenka B, Julien I, Isabelle K, Christine P, Elise M, Catherine S, Bernard
A, Ester A, Jerome R, Alain T, Jean-Yves B (2014) Transfer, transformation, and impacts of
ceria nanomaterials in aquatic mesocosms simulating a pond ecosystem. Environ Sci Technol
48:9004–9013
Marmiroli M, Pagano L, Sardaro MLS, Villani M, Marmiroli N (2014) Genome-wide approach
in Arabidopsis thaliana to assess the toxicity of cadmium sulfide quantum dots. Environ Sci
Technol 48:5902–5909
Mattiello A, Filippi A, Poscic F, Musetti R, Salvatici MC, Giordano C, Vischi M, Bertolini A,
Marchiol L (2015) Evidence of phytotoxicity and genotoxicity in Hordeum vulgare L. exposed
to CeO 2 and TiO 2 nanoparticles. Front Plant Sci 6:1043
Mazumdar H (2014) Comparative assessment of the adverse effect of silver nanoparticles to Vigna
radiata and Brassica campestris crop plants. Int J Eng Res Appl 4:118–124
Moghaddasi S, Hossein KA, Karimzadeh F, Chaney R (2015) Fate and effect of tire rubber ash
nano-particles (RANPs) in cucumber. Ecotoxicol Environ Saf 115:137–143
Morales MI, Rico CM, Viezcas JAH, Nunez JE, Barrios AC, Tafoya A, Marges JPF, Videa
JRP, Torresdey JLG (2013) Toxicity assessment of cerium oxide nanoparticles in cilantro
(Coriandrum sativum L.) plants grown in organic soil. J Agric Food Chem 61:6224–6230
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
Nel A, Grainger D, Alvarez P, Badesha S, Castranova V, Ferrari M, Godwin H, Grodzinski P,
Morris J, Savage N, Scott N, Wiesner M (2007) Nanotechnology environmental, health, and
safety issues. Nova Science, New York, pp 107–157
Ocsoy I, Paret ML, Ocsoy MA, Kunwar S, Chen T, You M, Tan W (2013) Nanotechnology in plant
disease management: DNA-directed silver nanoparticles on graphene oxide as an antibacterial
against Xanthomonas perforans. ACS Nano 7:8972–8980
Padmadhas R, Ragunathan R (2009) Effect of lead nano particle present in the leaf of Calotrphis
gigantea which result in the loss of the painted grass hopper of the western ghats species in
India. Int J Nanotechnol Appl 3:89
Peralta-Videa JR, Hernandez-Viezcas JA, Zhao L, Diaz BC, Ge Y, Priester JH, Holden PA, GardeaTorresdey JL (2014) Cerium dioxide and zinc oxide nanoparticles alter the nutritional value of
soil cultivated soybean plants. Plant Physiol Biochem 80:128–135
Pokhrel LR, Dubey B (2013) Evaluation of developmental responses of two crop plants exposed to
silver and zinc oxide nanoparticles. Sci Total Environ 452–453:321–332
Qi M, Liu Y, Li T (2013) Nano-TiO 2 improve the photosynthesis of tomato leaves under mild heat
stress. Biol Trace Elem Res 156:323–328
Qian H, Peng X, Han X, Ren J, Sun L, Fu Z (2013) Comparison of the toxicity of silver nanoparticles and silver ions on the growth of terrestrial plant model Arabidopsis thaliana. J Environ
Sci 25:1947–1956
Racuciu M, Creanga DE (2007) TMA-OH coated magnetic nanoparticles internalized in vegetal
tissue. Rom J Phys 52:395–402
Racuciu M, Creanga DE (2009a) Cytogenetical changes induced by β-cyclodextrin coated
nanoparticles in plant seeds. Rom J Phys 54:125–131
Racuciu M, Creanga DE (2009b) Biocompatible magnetic fluid nanoparticles internalized in vegetal tissue. Rom J Phys 54:115–124
Racuciu M, Miclaus S, Creanga DE (2009) The response of plant tissues to magnetic fluid and
electromagnetic exposure. Rom J Biophys 19:73–82
Reier T, Oezaslan M, Strasser P (2012) Electrocatalytic oxygen evolution reaction (OER) on
Ru, Ir, and Pt catalysts: a comparative study of nanoparticles and bulk materials. ACS Catal
2:1765–1772
Remya N, Mohamed MS, Gao W, Maekawa T, Yoshida Y, Ajayan PM, Kumar DS (2012) Effect
of carbon nanomaterials on the germination and growth of rice plants. J Nanosci Nanotechnol
12:2212–2220
10 Phytoresponse to Nanoparticle Exposure
Précédent

- 291/326

Suivant