Alkilany AM, Murphy CJ (2010) Toxicity and cellular uptake of gold
nanoparticles: what we have learned so far? J Nanopart Res 12
(7):2313–2333
Arora S, Sharma P, Kumar S, Nayan R, Khanna PK, Zaidi MGH
(2012) Gold-nanoparticle induced enhancement in growth and seed
yield of Brassica juncea. Plant Growth Reg 66(3):303–310
Been BO (1995) Integrated pest management for the control of lethal
yellowing: quarantine, cultural practices and optimal use of hybrids.
In Lethal yellowing: research and practical aspects (pp. 101–109).
Springer, Dordrecht.
Bernhardt ES, Colman BP, Hochella MF, Cardinale BJ, Nisbet RM,
Richardson CJ, Yin L (2010) An ecological perspective on
nanomaterial impacts in the environment. J Environ Qual 39
(6):1954–1965
Brewer MJ, Goodell PB (2012) Approaches and incentives to
implement integrated pest management that addresses regional
and environmental issues. Ann Rev Entomology 57:41–59
Burman U, Kumar P (2018) Plant response to engineered nanoparticles.
In Nanomaterials in Plants, Algae, and Microorganisms (pp. 103–
118). Academic Press.
Chhipa H (2017) Nanofertilizers and nanopesticides for agriculture.
Environ Chem Lett 15(1):15–22
Chinnamuthu CR, Boopathi PM (2009) Nanotechnology and Agroecosystem. Madras Agric J 96(1/6):17–31
Dimkpa CO (2014) Can nanotechnology deliver the promised benefits
without negatively impacting soil microbial life? J Basic Microb 54
(9):889–904
Falco WF, Botero ER, Falcão EA, Santiago EF, Bagnato VS,
Caires ARL (2011) In vivo observation of chlorophyll fluorescence
quenching induced by gold nanoparticles. J Photochem Photobiol a:
Chemistry 225(1):65–71
Fazal H, Abbasi BH, Ahmad N, Ali M (2016) Elicitation of medicinally
important antioxidant secondary metabolites with silver and gold
nanoparticles in callus cultures of Prunella vulgaris L. Appl
Biochem Biotechnol 180(6):1076–1092
FerryJL CP, Hexel C, Sisco P, Frey R, Pennington PL, Murphy CJ
(2009) Transfer of gold nanoparticles from the water column to the
estuarine food web. Nat Nanotechnol 4(7):441
Giraldo JP, Wu H, Newkirk GM, Kruss S (2019) Nanobiotechnology
approaches for engineering smart plant sensors. Nat Nanotech 14
(6):541–553
Glenn JB, White SA, Klaine SJ (2012) Interactions of gold nanoparticles with freshwater aquatic macrophytes are size and species
dependent. Environ Toxic Chem 31(1):194–201
González-Melendi P, Fernández-Pacheco R, Coronado MJ, Corredor E,
Testillano PS, Risueño MC, Pérez-de-Luque A (2008) Nanoparticles as smart treatment-delivery systems in plants: assessment of
different techniques of microscopy for their visualization in plant
tissues. Ann Botany 101(1):187–195
Gunjan B, Zaidi MGH (2014) Impact of gold nanoparticles on
physiological and biochemical characteristics of Brassica juncea.
J Plant Biochem Physiol 2:133
Hosseini SJF, Dehyouri S, Mirdamadi SM (2010) The perception of
agricultural researchers about the role of nanotechnology in
achieving food security. African J Biotechnol 9(37):6152–6157
Ismail M, Prasad R, Ibrahim AI, Ahmed AI (2017) Modern prospects
of nanotechnology in plant pathology. In Nanotechnology (pp. 305–
317). Springer, Singapore.
Ivask A, Kurvet I, Kasemets K, Blinova I, Aruoja V, Suppi S,
Visnapuu M (2014) Size-dependent toxicity of silver nanoparticles
to bacteria, yeast, algae, crustaceans and mammalian cells in vitro.
PLoS ONE 9(7):e102108
Jo YK, Kim BH, Jung G (2009) Antifungal activity of silver ions and
nanoparticles on phytopathogenic fungi. Plant Dis 93(10):1037–
1043
Fang Y, Ramasamy RP (2015) Current and prospective methods for
plant disease detection. Biosensors 5(3):537–561
Kah M, Hofmann T (2014) Nanopesticide research: current trends and
future priorities. Environ Int 63:224–235
Khodakovskaya M, Dervishi E, Mahmood M, Xu Y, Li Z, Watanabe F,
Biris AS (2009) Carbon nanotubes are able to penetrate plant seed
coat and dramatically affect seed germination and plant growth.
ACS Nano 3(10):3221–3227
Kim DH, Gopal J, Sivanesan I (2017) Nanomaterials in plant tissue
culture: the disclosed and undisclosed. RSC Adv 7(58):36492–
36505
Koelmel J, Leland T, Wang H, Amarasiriwardena D, Xing B (2013)
Investigation of gold nanoparticles uptake and their tissue level
distribution in rice plants by laser ablation-inductively
coupled-mass spectrometry. Environ Poll 174:222–228
Kokina I, Gerbreders V, Sledevskis E, Bulanovs A (2013) Penetration
of nanoparticles in flax (Linum usitatissimum L.) calli and
regenerants. J biotechnol 165(2):127–132.
Kumar S, Nehra M, Dilbaghi N, Marrazza G, Hassan AA, Kim KH
(2019) Nano-based smart pesticide formulations: Emerging opportunities for agriculture. J Controlled Rel 294:131–153
Kumar V, Kumar V, Som S, Neethling JH, Olivier E, Ntwaeaborwa OM, Swart HC (2014) The role of surface and deep-level
defects on the emission of tin oxide quantum dots. Nanotechnology
25(13):135701
Li H, Ye X, Guo X, Geng Z, Wang G (2016) Effects of surface ligands
on the uptake and transport of gold nanoparticles in rice and tomato.
J Hazard Mat 314:188–196
Mahakham W, Theerakulpisut P, Maensiri S, Phumying S, Sarmah AK
(2016) Environmentally benign synthesis of phytochemicals-capped
gold nanoparticles as nanopriming agent for promoting maize seed
germination. Sci Total Environ 573:1089–1102
Mahlein AK (2016) Plant disease detection by imaging sensors–
parallels and specific demands for precision agriculture and plant
phenotyping. Plant Dis 100(2):241–251
Martin-Ortigosa S, Peterson DJ, Valenstein JS, Lin VSY, Trewyn BG,
Lyznik
LA,
Wang
K
(2014)
Mesoporous
silica
nanoparticle-mediated intracellular Cre protein delivery for maize
genome editing via loxP site excision. Plant Physiol 164(2):537–
547
Notter DA, Mitrano DM, Nowack B (2014) Are nanosized or dissolved
metals more toxic in the environment? a Meta-Analysis. Environ
Toxic Chem 33(12):2733–2739
Onelli E, Prescianotto-Baschong C, Caccianiga M, Moscatelli A (2008)
Clathrin-dependent and independent endocytic pathways in tobacco
protoplasts revealed by labelling with charged nanogold. J Exp
Botany 59(11):3051–3068
Parveen A, Mazhari BBZ, Rao S (2016) Impact of bio-nanogold on
seed germination and seedling growth in Pennisetum glaucum. Enz
Microb Technol 95:107–111
Poddar K, Vijayan J, Ray S, Adak T (2018) Nanotechnology for
sustainable agriculture. In Biotechnology for Sustainable Agriculture (pp. 281–303). Woodhead Publishing.
Ragaei M, Sabry AKH (2014) Nanotechnology for insect pest control.
Int J Cci, Environ Technol 3(2):528–545
Rains DW (1989) 10 Plant tissue and protoplast culture: applications to
stress physiology and. Plants Under Stress: Biochemistry, Physiology and Ecology and Their Application to Plant Improvement
39:181
Raliya R, Franke C, Chavalmane S, Nair R, Reed N, Biswas P (2016)
Quantitative understanding of nanoparticle uptake in watermelon
plants. Front Plant Sci 7:1288
Rodrigues SM, Demokritou P, Dokoozlian N, Hendren CO, Karn B,
Mauter MS, Sadik OA, Safarpour M, Unrine JM, Viers J, Welle P
(2017) Nanotechnology for sustainable food production: promising
26
Upinder and R. Kumar
nanoparticles: what we have learned so far? J Nanopart Res 12
(7):2313–2333
Arora S, Sharma P, Kumar S, Nayan R, Khanna PK, Zaidi MGH
(2012) Gold-nanoparticle induced enhancement in growth and seed
yield of Brassica juncea. Plant Growth Reg 66(3):303–310
Been BO (1995) Integrated pest management for the control of lethal
yellowing: quarantine, cultural practices and optimal use of hybrids.
In Lethal yellowing: research and practical aspects (pp. 101–109).
Springer, Dordrecht.
Bernhardt ES, Colman BP, Hochella MF, Cardinale BJ, Nisbet RM,
Richardson CJ, Yin L (2010) An ecological perspective on
nanomaterial impacts in the environment. J Environ Qual 39
(6):1954–1965
Brewer MJ, Goodell PB (2012) Approaches and incentives to
implement integrated pest management that addresses regional
and environmental issues. Ann Rev Entomology 57:41–59
Burman U, Kumar P (2018) Plant response to engineered nanoparticles.
In Nanomaterials in Plants, Algae, and Microorganisms (pp. 103–
118). Academic Press.
Chhipa H (2017) Nanofertilizers and nanopesticides for agriculture.
Environ Chem Lett 15(1):15–22
Chinnamuthu CR, Boopathi PM (2009) Nanotechnology and Agroecosystem. Madras Agric J 96(1/6):17–31
Dimkpa CO (2014) Can nanotechnology deliver the promised benefits
without negatively impacting soil microbial life? J Basic Microb 54
(9):889–904
Falco WF, Botero ER, Falcão EA, Santiago EF, Bagnato VS,
Caires ARL (2011) In vivo observation of chlorophyll fluorescence
quenching induced by gold nanoparticles. J Photochem Photobiol a:
Chemistry 225(1):65–71
Fazal H, Abbasi BH, Ahmad N, Ali M (2016) Elicitation of medicinally
important antioxidant secondary metabolites with silver and gold
nanoparticles in callus cultures of Prunella vulgaris L. Appl
Biochem Biotechnol 180(6):1076–1092
FerryJL CP, Hexel C, Sisco P, Frey R, Pennington PL, Murphy CJ
(2009) Transfer of gold nanoparticles from the water column to the
estuarine food web. Nat Nanotechnol 4(7):441
Giraldo JP, Wu H, Newkirk GM, Kruss S (2019) Nanobiotechnology
approaches for engineering smart plant sensors. Nat Nanotech 14
(6):541–553
Glenn JB, White SA, Klaine SJ (2012) Interactions of gold nanoparticles with freshwater aquatic macrophytes are size and species
dependent. Environ Toxic Chem 31(1):194–201
González-Melendi P, Fernández-Pacheco R, Coronado MJ, Corredor E,
Testillano PS, Risueño MC, Pérez-de-Luque A (2008) Nanoparticles as smart treatment-delivery systems in plants: assessment of
different techniques of microscopy for their visualization in plant
tissues. Ann Botany 101(1):187–195
Gunjan B, Zaidi MGH (2014) Impact of gold nanoparticles on
physiological and biochemical characteristics of Brassica juncea.
J Plant Biochem Physiol 2:133
Hosseini SJF, Dehyouri S, Mirdamadi SM (2010) The perception of
agricultural researchers about the role of nanotechnology in
achieving food security. African J Biotechnol 9(37):6152–6157
Ismail M, Prasad R, Ibrahim AI, Ahmed AI (2017) Modern prospects
of nanotechnology in plant pathology. In Nanotechnology (pp. 305–
317). Springer, Singapore.
Ivask A, Kurvet I, Kasemets K, Blinova I, Aruoja V, Suppi S,
Visnapuu M (2014) Size-dependent toxicity of silver nanoparticles
to bacteria, yeast, algae, crustaceans and mammalian cells in vitro.
PLoS ONE 9(7):e102108
Jo YK, Kim BH, Jung G (2009) Antifungal activity of silver ions and
nanoparticles on phytopathogenic fungi. Plant Dis 93(10):1037–
1043
Fang Y, Ramasamy RP (2015) Current and prospective methods for
plant disease detection. Biosensors 5(3):537–561
Kah M, Hofmann T (2014) Nanopesticide research: current trends and
future priorities. Environ Int 63:224–235
Khodakovskaya M, Dervishi E, Mahmood M, Xu Y, Li Z, Watanabe F,
Biris AS (2009) Carbon nanotubes are able to penetrate plant seed
coat and dramatically affect seed germination and plant growth.
ACS Nano 3(10):3221–3227
Kim DH, Gopal J, Sivanesan I (2017) Nanomaterials in plant tissue
culture: the disclosed and undisclosed. RSC Adv 7(58):36492–
36505
Koelmel J, Leland T, Wang H, Amarasiriwardena D, Xing B (2013)
Investigation of gold nanoparticles uptake and their tissue level
distribution in rice plants by laser ablation-inductively
coupled-mass spectrometry. Environ Poll 174:222–228
Kokina I, Gerbreders V, Sledevskis E, Bulanovs A (2013) Penetration
of nanoparticles in flax (Linum usitatissimum L.) calli and
regenerants. J biotechnol 165(2):127–132.
Kumar S, Nehra M, Dilbaghi N, Marrazza G, Hassan AA, Kim KH
(2019) Nano-based smart pesticide formulations: Emerging opportunities for agriculture. J Controlled Rel 294:131–153
Kumar V, Kumar V, Som S, Neethling JH, Olivier E, Ntwaeaborwa OM, Swart HC (2014) The role of surface and deep-level
defects on the emission of tin oxide quantum dots. Nanotechnology
25(13):135701
Li H, Ye X, Guo X, Geng Z, Wang G (2016) Effects of surface ligands
on the uptake and transport of gold nanoparticles in rice and tomato.
J Hazard Mat 314:188–196
Mahakham W, Theerakulpisut P, Maensiri S, Phumying S, Sarmah AK
(2016) Environmentally benign synthesis of phytochemicals-capped
gold nanoparticles as nanopriming agent for promoting maize seed
germination. Sci Total Environ 573:1089–1102
Mahlein AK (2016) Plant disease detection by imaging sensors–
parallels and specific demands for precision agriculture and plant
phenotyping. Plant Dis 100(2):241–251
Martin-Ortigosa S, Peterson DJ, Valenstein JS, Lin VSY, Trewyn BG,
Lyznik
LA,
Wang
K
(2014)
Mesoporous
silica
nanoparticle-mediated intracellular Cre protein delivery for maize
genome editing via loxP site excision. Plant Physiol 164(2):537–
547
Notter DA, Mitrano DM, Nowack B (2014) Are nanosized or dissolved
metals more toxic in the environment? a Meta-Analysis. Environ
Toxic Chem 33(12):2733–2739
Onelli E, Prescianotto-Baschong C, Caccianiga M, Moscatelli A (2008)
Clathrin-dependent and independent endocytic pathways in tobacco
protoplasts revealed by labelling with charged nanogold. J Exp
Botany 59(11):3051–3068
Parveen A, Mazhari BBZ, Rao S (2016) Impact of bio-nanogold on
seed germination and seedling growth in Pennisetum glaucum. Enz
Microb Technol 95:107–111
Poddar K, Vijayan J, Ray S, Adak T (2018) Nanotechnology for
sustainable agriculture. In Biotechnology for Sustainable Agriculture (pp. 281–303). Woodhead Publishing.
Ragaei M, Sabry AKH (2014) Nanotechnology for insect pest control.
Int J Cci, Environ Technol 3(2):528–545
Rains DW (1989) 10 Plant tissue and protoplast culture: applications to
stress physiology and. Plants Under Stress: Biochemistry, Physiology and Ecology and Their Application to Plant Improvement
39:181
Raliya R, Franke C, Chavalmane S, Nair R, Reed N, Biswas P (2016)
Quantitative understanding of nanoparticle uptake in watermelon
plants. Front Plant Sci 7:1288
Rodrigues SM, Demokritou P, Dokoozlian N, Hendren CO, Karn B,
Mauter MS, Sadik OA, Safarpour M, Unrine JM, Viers J, Welle P
(2017) Nanotechnology for sustainable food production: promising
26
Upinder and R. Kumar
