Hong J, Wang L, Sun Y, Zhao L, Niu G, Tan W, Rico CM,
Peralta-Videa JR, Gardea-Torresdey JL (2016) Foliar applied
nanoscale and microscale CeO2 and CuO alter cucumber (Cucumis
sativus) fruit quality. Sci Total Environ 563–564:904–911
Hou R, Zhang Z, Pang S, Yang T, Clark JM, He L (2016) Alteration of
the non systemic behavior of the pesticide ferbam on tea leaves by
engineered gold nanoparticles. Environ Sci Technol 50:6216–6223
Jung ES, Sivakumar S, Hong S-C, Yi P-I, Jang S-H, Suh J-M (2020)
Influence of relative humidity on germination and metal accumulation in Vigna radiata exposed to metal-based nanoparticles.
Sustainability 12:1347
Katiyar P, Yadu B, Korram J, Satnami ML, Kumar M, Keshavkant S
(2020) Titanium nanoparticles attenuates arsenic toxicity by
up-regulating expressions of defensive genes in Vigna radiata L.
Journal of Environmental Sciences 92:18–27
Khan MA, Wallace WT, Sambi J, Rogers DT, Littleton JM, Rankin SE,
Knutson BL (2020a) Nanoharvesting of bioactive materials from
living plant cultures using engineered silica nanoparticles. Mater Sci
Eng C Mater Biol Appl 106:110190
Khan ZS, Rizwan M, Hafeez M, Ali S, Adrees M, Qayyum MF,
Khalid S, Rehman MZ, Sarwar MA (2020b) Effects of silicon
nanoparticles on growth and physiology of wheat in cadmium
contaminated soil under different soil moisture levels. Environ Sci
Poll Int 27(5):4958–4968
Khan AAH (2019) Cytotoxic potential of plant nanoparticles. In:
Abd-Elsalam K and R. Prasad. (eds) Nanobiotechnology applications in plant protection. Nanotechnology in the life sciences.
Springer, Cham. pp. 241–265.
Khan, AAH, Naseem, Vardhini BV (2017) Resource-conserving
agriculture and role of microbes. In: Prasad R. and N. Kumar.
Microbes & sustainable agriculture. IK International Publishing
House, New Delhi. pp 117–152
Khan AAH, Naseem VBV (2015) Synthesis of nanoparticles from plant
extracts. International Journal of Modern Chemistry and Applied
Science 2(3):195–203
Khan AAH, Naseem, Vardhini BV (2015b) Fungus mediated synthesis
of metal nanoparticles. In: Sivaramaiah, G. (ed) Proceedings of
national seminar on new trends on advanced materials (NTAM).
Paramount Publishing House, Hyderabad. pp. 82–88.
Kokina I, Plaksenkova I, Jermaļonoka M, Petrova A (2020) Impact of
iron oxide nanoparticles on yellow medick (Medicago falcata L.)
plants. Journal of Plant Interactions 15(1): 1–7
Kojic D, Purac J, Celic TV, Jovic D, Vukasinovic EL, Pihler I,
Borisev I, Djordjevic A (2020) Effect of fullerenol nanoparticles on
oxidative stress induced by paraquat in honey bees. Environ Sci
Pollut Res 27:6603–6612
Kubavat D, Trivedi K, Vaghela P, Prasad K, Anand KGV, Trivedi H,
Patidar R, Chaudhary J, Andhariya B, Ghosh A (2020) Characterization of chitosan based sustained release nano-fertilizer formulation as a soil conditioner whilst improving biomass production of
Zea mays L. Land Degrad Dev. https://doi.org/10.1002/ldr.3629
Kumar GD, Raja K, Natarajan N, Govindaraju K, Subramanian KS
(2020) Invigouration treatment of metal and metal oxide nanoparticles for improving the seed quality of aged chilli seeds (Capsicum
annum L.), Materials Chemistry and Physics 242: 122492
Lian J, Zhao L, Wu J, Xiong H, Bao Y, Zeb A, Tang J, Liu W (2020)
Foliar spray of TiO2 nanoparticles prevails over root application in
reducing Cd accumulation and mitigating Cd-induced phytotoxicity
in maize (Zea mays L.). Chemosphere 239: 124794
Linares MG, Jia Y, Sunahara GI, Whalen JK (2020) Barley (Hordeum
vulgare) seedling growth declines with increasing exposure to silver
nanoparticles in biosolid-amended soils. Can J Soil Sci. https://doi.
org/10.1139/cjss-2019-0135
Li X, Sun Y, Yuan L, Liang L, Jiang Y, Piao H, Song D, Yu A,
Wang X (2018) Packed hybrids of gold nanoparticles and layered
double hydroxide nanosheets for microextraction of triazine herbicides from maize. Microchim Acta 185:36
Li X, Sun Y, Sun Q, Liang L, Piao H, Jiang Y, Yu A, Song D, Wang X
(2017) Ionic-liquid-functionalized zinc oxide nanoparticles for the
solid-phase extraction of triazine herbicides in corn prior to
high-performance liquid chromatography analysis. J Sep Sci 40
(14):2992–2998
Ma X, Sharifan H, Dou F, Sun W (2020) Simultaneous reduction of
arsenic (As) and cadmium (Cd) accumulation in rice by zinc oxide
nanoparticles. Chem Eng J 384:123802
Martins NCT, Avellan A, Rodrigues S, Salvador D, Rodrigues SM,
Trindade T (2020) Composites of biopolymers and ZnO NPs for
controlled release of zinc in agricultural soils and timed delivery for
Maize. ACS Applied Nano Materials 3(3):2134–2148
Meier S, Morales FMA, Gonzalez ME, Seguel A, Merino-Gergichevich
C, Rubilar O, Cumming J, Aponte H, Alarcon D, Mejias J (2020)
Synthesis of calcium borate nanoparticles and its use as a potential
foliar fertilizer in lettuce (Lactuca sativa) and zucchini (Cucurbita
pepo). Plant Physiol Biochem 151:673–680
Mohammadi H, Amani-Ghadim AR, Matin AA, Ghorbanpour M
(2020) Fe
0 nanoparticles improve physiological and antioxidative
attributes of sunflower (Helianthus annuus) plants grown in soil
spiked with hexavalent chromium. 3 Biotech 10(1):19
Mylona Z, Panteris E, Moustakas M, Kevrekidis T, Malea P (2020)
Physiological, structural and ultrastructural impacts of silver
nanoparticles on the seagrass Cymodocea nodosa. Chemosphere
248:126066
Maruyama CR, Guilger M, Pascoli M, Bileshy-Jose N, Abhilash PC,
Fraceto, de Lima R, (2016) Nanoparticles based on chitosan as
carriers for the combined herbicides imazapic and imazapyr. Sci
Rep 6:19768
Natasha SM, Farooq ABU, Rabbani F, Khalid S, Dumat C (2020) Risk
assessment and biophysiochemical responses of spinach to foliar
application of lead oxide nanoparticles: A multivariate analysis.
Chemosphere 245:125605
Naeimi A, Saeidi M, Baroumand N (2016) Carboxylated carbon
nanotubes as an efficient and cost-effective adsorbent for sustainable
removal of insecticide fenvalerate from contaminated solutions. Int
Nano Lett 6:265–271
Nhan LV, Ma C, Rui Y, Cao W, Deng Y, Liu L, Xing B (2016) The
effects of Fe 2 O 3 nanoparticles on physiology and insecticide activity
in non-transgenic and Bt-transgenic cotton. Front Plant Sci
6:1263
Neto ME, Britt DW, Lara LM, Cartwright A, dos Santos RF, Inoue TT,
Batista MA (2020) Initial development of corn seedlings after seed
priming with nanoscale synthetic Zinc oxide. Agronomy 10:307
Noori A, Donnelly T, Colbert J, Cai W, Newman LA, White JC (2020)
Exposure of tomato (Lycopersicon esculentum) to silver nanoparticles and silver nitrate: physiological and molecular response. Int J
Phytoremediation 22(1):40–51
Ogunkunle CO, Odulaja DA, Akande FO, Varun M, Vishwakarma V,
Fatoba PO (2020) Cadmium toxicity in cowpea plant: Effect of
foliar intervention of nano-TiO2 on tissue Cd bioaccumulation,
stress enzymes and potential dietary health risk. J Biotechnol
310:54–61
Ochoa L, Medina-Velo IA, Barrios AC, Bonilla-Bird NJ,
Hernandez-Viezcas JA, Peralta-Videa JR, Gardea-Torresdey JL
(2017) Modulation of CuO nanoparticles toxicity to green pea
(Pisum sativum Fabaceae) by the phytohormone indole-3-acetic
acid. Sci Total Environ 598:513–524
Osman SA, Salama DM, El-Aziz MEA, Shaaban EA, Elwahed MSA
(2020) The influence of MoO 3 -NPs on agro-morphological criteria,
genomic stability of DNA, biochemical assay, and production of
common dry bean (Phaseolus vulgaris L.). Plant Physiol Biochem
151:77–87
Plant Physiological Responses to Engineered Nanoparticles
97
Peralta-Videa JR, Gardea-Torresdey JL (2016) Foliar applied
nanoscale and microscale CeO2 and CuO alter cucumber (Cucumis
sativus) fruit quality. Sci Total Environ 563–564:904–911
Hou R, Zhang Z, Pang S, Yang T, Clark JM, He L (2016) Alteration of
the non systemic behavior of the pesticide ferbam on tea leaves by
engineered gold nanoparticles. Environ Sci Technol 50:6216–6223
Jung ES, Sivakumar S, Hong S-C, Yi P-I, Jang S-H, Suh J-M (2020)
Influence of relative humidity on germination and metal accumulation in Vigna radiata exposed to metal-based nanoparticles.
Sustainability 12:1347
Katiyar P, Yadu B, Korram J, Satnami ML, Kumar M, Keshavkant S
(2020) Titanium nanoparticles attenuates arsenic toxicity by
up-regulating expressions of defensive genes in Vigna radiata L.
Journal of Environmental Sciences 92:18–27
Khan MA, Wallace WT, Sambi J, Rogers DT, Littleton JM, Rankin SE,
Knutson BL (2020a) Nanoharvesting of bioactive materials from
living plant cultures using engineered silica nanoparticles. Mater Sci
Eng C Mater Biol Appl 106:110190
Khan ZS, Rizwan M, Hafeez M, Ali S, Adrees M, Qayyum MF,
Khalid S, Rehman MZ, Sarwar MA (2020b) Effects of silicon
nanoparticles on growth and physiology of wheat in cadmium
contaminated soil under different soil moisture levels. Environ Sci
Poll Int 27(5):4958–4968
Khan AAH (2019) Cytotoxic potential of plant nanoparticles. In:
Abd-Elsalam K and R. Prasad. (eds) Nanobiotechnology applications in plant protection. Nanotechnology in the life sciences.
Springer, Cham. pp. 241–265.
Khan, AAH, Naseem, Vardhini BV (2017) Resource-conserving
agriculture and role of microbes. In: Prasad R. and N. Kumar.
Microbes & sustainable agriculture. IK International Publishing
House, New Delhi. pp 117–152
Khan AAH, Naseem VBV (2015) Synthesis of nanoparticles from plant
extracts. International Journal of Modern Chemistry and Applied
Science 2(3):195–203
Khan AAH, Naseem, Vardhini BV (2015b) Fungus mediated synthesis
of metal nanoparticles. In: Sivaramaiah, G. (ed) Proceedings of
national seminar on new trends on advanced materials (NTAM).
Paramount Publishing House, Hyderabad. pp. 82–88.
Kokina I, Plaksenkova I, Jermaļonoka M, Petrova A (2020) Impact of
iron oxide nanoparticles on yellow medick (Medicago falcata L.)
plants. Journal of Plant Interactions 15(1): 1–7
Kojic D, Purac J, Celic TV, Jovic D, Vukasinovic EL, Pihler I,
Borisev I, Djordjevic A (2020) Effect of fullerenol nanoparticles on
oxidative stress induced by paraquat in honey bees. Environ Sci
Pollut Res 27:6603–6612
Kubavat D, Trivedi K, Vaghela P, Prasad K, Anand KGV, Trivedi H,
Patidar R, Chaudhary J, Andhariya B, Ghosh A (2020) Characterization of chitosan based sustained release nano-fertilizer formulation as a soil conditioner whilst improving biomass production of
Zea mays L. Land Degrad Dev. https://doi.org/10.1002/ldr.3629
Kumar GD, Raja K, Natarajan N, Govindaraju K, Subramanian KS
(2020) Invigouration treatment of metal and metal oxide nanoparticles for improving the seed quality of aged chilli seeds (Capsicum
annum L.), Materials Chemistry and Physics 242: 122492
Lian J, Zhao L, Wu J, Xiong H, Bao Y, Zeb A, Tang J, Liu W (2020)
Foliar spray of TiO2 nanoparticles prevails over root application in
reducing Cd accumulation and mitigating Cd-induced phytotoxicity
in maize (Zea mays L.). Chemosphere 239: 124794
Linares MG, Jia Y, Sunahara GI, Whalen JK (2020) Barley (Hordeum
vulgare) seedling growth declines with increasing exposure to silver
nanoparticles in biosolid-amended soils. Can J Soil Sci. https://doi.
org/10.1139/cjss-2019-0135
Li X, Sun Y, Yuan L, Liang L, Jiang Y, Piao H, Song D, Yu A,
Wang X (2018) Packed hybrids of gold nanoparticles and layered
double hydroxide nanosheets for microextraction of triazine herbicides from maize. Microchim Acta 185:36
Li X, Sun Y, Sun Q, Liang L, Piao H, Jiang Y, Yu A, Song D, Wang X
(2017) Ionic-liquid-functionalized zinc oxide nanoparticles for the
solid-phase extraction of triazine herbicides in corn prior to
high-performance liquid chromatography analysis. J Sep Sci 40
(14):2992–2998
Ma X, Sharifan H, Dou F, Sun W (2020) Simultaneous reduction of
arsenic (As) and cadmium (Cd) accumulation in rice by zinc oxide
nanoparticles. Chem Eng J 384:123802
Martins NCT, Avellan A, Rodrigues S, Salvador D, Rodrigues SM,
Trindade T (2020) Composites of biopolymers and ZnO NPs for
controlled release of zinc in agricultural soils and timed delivery for
Maize. ACS Applied Nano Materials 3(3):2134–2148
Meier S, Morales FMA, Gonzalez ME, Seguel A, Merino-Gergichevich
C, Rubilar O, Cumming J, Aponte H, Alarcon D, Mejias J (2020)
Synthesis of calcium borate nanoparticles and its use as a potential
foliar fertilizer in lettuce (Lactuca sativa) and zucchini (Cucurbita
pepo). Plant Physiol Biochem 151:673–680
Mohammadi H, Amani-Ghadim AR, Matin AA, Ghorbanpour M
(2020) Fe
0 nanoparticles improve physiological and antioxidative
attributes of sunflower (Helianthus annuus) plants grown in soil
spiked with hexavalent chromium. 3 Biotech 10(1):19
Mylona Z, Panteris E, Moustakas M, Kevrekidis T, Malea P (2020)
Physiological, structural and ultrastructural impacts of silver
nanoparticles on the seagrass Cymodocea nodosa. Chemosphere
248:126066
Maruyama CR, Guilger M, Pascoli M, Bileshy-Jose N, Abhilash PC,
Fraceto, de Lima R, (2016) Nanoparticles based on chitosan as
carriers for the combined herbicides imazapic and imazapyr. Sci
Rep 6:19768
Natasha SM, Farooq ABU, Rabbani F, Khalid S, Dumat C (2020) Risk
assessment and biophysiochemical responses of spinach to foliar
application of lead oxide nanoparticles: A multivariate analysis.
Chemosphere 245:125605
Naeimi A, Saeidi M, Baroumand N (2016) Carboxylated carbon
nanotubes as an efficient and cost-effective adsorbent for sustainable
removal of insecticide fenvalerate from contaminated solutions. Int
Nano Lett 6:265–271
Nhan LV, Ma C, Rui Y, Cao W, Deng Y, Liu L, Xing B (2016) The
effects of Fe 2 O 3 nanoparticles on physiology and insecticide activity
in non-transgenic and Bt-transgenic cotton. Front Plant Sci
6:1263
Neto ME, Britt DW, Lara LM, Cartwright A, dos Santos RF, Inoue TT,
Batista MA (2020) Initial development of corn seedlings after seed
priming with nanoscale synthetic Zinc oxide. Agronomy 10:307
Noori A, Donnelly T, Colbert J, Cai W, Newman LA, White JC (2020)
Exposure of tomato (Lycopersicon esculentum) to silver nanoparticles and silver nitrate: physiological and molecular response. Int J
Phytoremediation 22(1):40–51
Ogunkunle CO, Odulaja DA, Akande FO, Varun M, Vishwakarma V,
Fatoba PO (2020) Cadmium toxicity in cowpea plant: Effect of
foliar intervention of nano-TiO2 on tissue Cd bioaccumulation,
stress enzymes and potential dietary health risk. J Biotechnol
310:54–61
Ochoa L, Medina-Velo IA, Barrios AC, Bonilla-Bird NJ,
Hernandez-Viezcas JA, Peralta-Videa JR, Gardea-Torresdey JL
(2017) Modulation of CuO nanoparticles toxicity to green pea
(Pisum sativum Fabaceae) by the phytohormone indole-3-acetic
acid. Sci Total Environ 598:513–524
Osman SA, Salama DM, El-Aziz MEA, Shaaban EA, Elwahed MSA
(2020) The influence of MoO 3 -NPs on agro-morphological criteria,
genomic stability of DNA, biochemical assay, and production of
common dry bean (Phaseolus vulgaris L.). Plant Physiol Biochem
151:77–87
Plant Physiological Responses to Engineered Nanoparticles
97
