1932

Abstract

Engineered nanoparticles are materials between 1 and 100 nm and exist as metalloids, metallic oxides, nonmetals, and carbon nanomaterials and as functionalized dendrimers, liposomes, and quantum dots. Their small size, large surface area, and high reactivity have enabled their use as bactericides/ fungicides and nanofertilizers. Nanoparticles can be designed as biosensors for plant disease diagnostics and as delivery vehicles for genetic material, probes, and agrichemicals. In the past decade, reports of nanotechnology in phytopathology have grown exponentially. Nanomaterials have been integrated into disease management strategies and diagnostics and as molecular tools. Most reports summarized herein are directed toward pathogen inhibition using metalloid/metallic oxide nanoparticles as bactericides/fungicides and as nanofertilizers to enhance health. The use of nanoparticles as biosensors in plant disease diagnostics is also reviewed. As global demand for food production escalates against a changing climate, nanotechnology could sustainably mitigate many challenges in disease management by reducing chemical inputs and promoting rapid detection of pathogens.

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2018-08-25
2024-04-16
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Literature Cited

  1. 1.  Abdellatif KF, Abdelfattah RH, El-Ansary MSM 2016. Green nanoparticles engineering on root-knot nematode infecting eggplants and their effect on plant DNA modification. Iran. J. Biotechnol. 14:4250–59
    [Google Scholar]
  2. 2.  Adisa IO, Hernandez-Viezcas JA, Elmer WH, White JC, Peralta-Videa JR, Gardea-Torresdey JL 2017. Evaluating the role of CeO2 nanoparticle in the suppression of Fusarium wilt disease in tomato plant Paper presented at the 6th Sustainable Nanotechnology Conference Los Angeles, CA:
  3. 3.  Aguilar-Méndez MA, Martín-Martínez ES, Ortega-Arroyo L, Cobián-Portillo G, Sánchez-Espíndola E 2011. Synthesis and characterization of silver nanoparticles: effect on phytopathogen Colletotrichum gloesporioides. J. Nanopart Res 13:2525–32
    [Google Scholar]
  4. 4.  Ahmadov S, Ramazanov MA, Sienkiewicz A, Forro L 2014. Uptake and intracellular trafficking of super paramagnetic iron oxide nanoparticles (SPIONs) in plants. Dig. J. Nanomater. Biostruct. 9:1149–57
    [Google Scholar]
  5. 5.  Albanese A, Tang PS, Chan WC 2012. The effect of nanoparticle size, shape, and surface chemistry on biological systems. Annu. Rev. Biomed. Eng. 14:1–16
    [Google Scholar]
  6. 6.  Alghuthaymi MA, Almoammar H, Rai M, Said-Galiev E, Abd-Elsalam KA 2015. Myconanoparticles: synthesis and their role in phytopathogens management. Biotechnol. Biotechnol. Equip. 29:2221–36
    [Google Scholar]
  7. 7.  Ali M, Kim B, Belfield KD, Norman D, Brennan M, Ali GS 2015. Inhibition of Phytophthora parasitica and P. capsici by silver nanoparticles synthesized using aqueous extract of Artemisia absinthium. . Phytopathology 105:91183–90
    [Google Scholar]
  8. 8.  Alonso-Lomilloa MA, Domínguez-Renedoa O, Ferreira-Gonçalves L, Arcos-Martíneza MJ 2010. Sensitive enzyme-biosensor based on screen-printed electrodes for ochratoxin A. Biosens. Bioelectron. 25:1333–37
    [Google Scholar]
  9. 9.  Ansari AA, Kaushik A, Solanki PR, Malhotra BD 2010. Nanostructured zinc oxide platform for mycotoxin detection. Bioelectrochemistry 77:275–81
    [Google Scholar]
  10. 10.  Ardakani AS 2013. Toxicity of silver, titanium and silicon nanoparticles on the root-knot nematode, Meloidogyne incognita, and growth parameters of tomato. Nematology 15:6671–77
    [Google Scholar]
  11. 11.  Astruc D 2008. Nanoparticles and Catalysis New York: John Wiley & Sons
  12. 12.  Barik TK, Sahu B, Swain V 2008. Nanosilica—from medicine to pest control. Parasitol. Res. 103:253–58
    [Google Scholar]
  13. 13.  Bergeson LL 2010. Nanosilver pesticide products: What does the future hold?. Environ. Q. Manag. 19:473–82
    [Google Scholar]
  14. 14.  Berry TD, Filley TR, Blanchette RA 2014. Oxidative enzymatic response of white-rot fungi to single-walled carbon nanotubes. Environ. Pollut. 193:197–204
    [Google Scholar]
  15. 15.  Bholay AD, Nalawade PM, Borkhataria BV 2013. Fungicides potential of biosynthesized silver nanoparticles against phytopathogens and potentiation of Fluconazol. World Res. J. Pharm. Res. 1:12–15
    [Google Scholar]
  16. 16.  Boonham N, Glover R, Tomlinson J, Mumford R 2008. Exploiting generic platform technologies for the detection and identification of plant pathogens. Sustainable Disease Management in a European Context DB Collinge, L Munk, BM Cooke 355–63 Berlin: Springer
    [Google Scholar]
  17. 17.  Boxi SS, Mukherjee K, Paria S 2016. Ag doped hollow TiO2 nanoparticles as an effective green fungicide against Fusarium solani and Venturia inaequalis phytopathogens. Nanotechnology 27:085103
    [Google Scholar]
  18. 18.  Bramhanwade K, Shende S, Bonde S, Gade A, Rai M 2016. Fungicidal activity of Cu nanoparticles against Fusarium causing crop diseases. Environ. Chem. Let. 14:2229–35
    [Google Scholar]
  19. 19.  Chao SHL, Choi HS 2005. Method for providing enhanced photosynthesis Korea Res. Inst. Chem. Technol. Bull., Korea Res. Inst. Chem. Technol. Jeonju, South Korea:
  20. 20.  Chen J, Wang X, Han H 2013. A new function of graphene oxide emerges: inactivating phytopathogenic bacterium, Xanthomonas oryzae pv. oryzae. J. Nanopart. Res. 15:51658
    [Google Scholar]
  21. 21.  Cheng Y, Zhao L, Li Y, Xu T 2011. Design of biocompatible dendrimers for cancer diagnosis and therapy: current status and future perspectives. Chem. Soc. Rev. 40:52673–703
    [Google Scholar]
  22. 22.  Choudhury SR, Nair KK, Kumar R, Gogoi R, Srivastava C et al. 2010. Nanosulfur: a potent fungicide against food pathogen, Aspergillus niger. AIP Conf. Proc. 1276:154–57
    [Google Scholar]
  23. 23.  Chu H, Kim HJ, Kim JS, Kim MS, Yoon BD et al. 2012. A nanosized Ag-silica hybrid complex prepared by γ-irradiation activates the defense response in Arabidopsis. Radiat. Phys. Chem. 81:2180–84
    [Google Scholar]
  24. 24.  Cromwell WA, Yang J, Starr JL, Jo YK 2014. Nematicidal effects of silver nanoparticles on root-knot nematode in bermudagrass. J. Nematol. 46:3261–66
    [Google Scholar]
  25. 25.  Dang VP, Vo TKL, Nguyen TKL, Nguyen ND, Nguyen GC et al. 2015. Synthesis and antimicrobial effects of colloidal silver nanoparticles in chitosan by c-irradiation. J. Exp. Nanosci. 5:169–79
    [Google Scholar]
  26. 26.  Daragó A 2014. The distribution of dagger nematodes species in Hungarian wind regions and newest control options PhD Thesis, Univ. Pannonia Georgikon, Keszthely, Hungary
  27. 27.  Datnoff LE, Elmer WH, Huber DM, eds. 2007. Mineral Nutrition and Plant Disease St. Paul, MN: APS Press
  28. 28.  Datnoff LE, Rodrigues FA, Seebold KW 2007. Silicon and plant disease. See Ref. 27 233–46
  29. 29.  De Filpo G, Palermo AM, Rachiele F, Nicoletta FP 2013. Preventing fungal growth in wood by titanium dioxide nanoparticles. Int. Biodeterior. Biodegrad. 85:217–22
    [Google Scholar]
  30. 30.  Derbalah AS, Elkot GAE, Hamza AM 2012. Laboratory evaluation of botanical extracts, microbial culture filtrates and silver nanoparticles against Botrytis cinerea. Ann. Microbiol 62:1331–37
    [Google Scholar]
  31. 31.  Derbalah AS, El-Moghazy SM, Godah MI 2013. Alternative control methods of sugar-beet leaf spot disease caused by the fungus Cercospora beticola (Sacc). Egypt. J. Biolog. Pest Control 23:2247–54
    [Google Scholar]
  32. 32.  Dimkpa CO, McLean JE, Britt DW, Anderson AJ 2013. Antifungal activity of ZnO nanoparticles and their interactive effect with a biocontrol bacterium on growth antagonism of the plant pathogen Fusarium graminearum. . Biometals 26:6913–24
    [Google Scholar]
  33. 33.  Dreizin EL 2009. Metal-based reactive nanomaterials. Prog. Energy Combust. Sci. 35:2141–67
    [Google Scholar]
  34. 34.  Duffy B 2007. Zinc and plant disease. See Ref. 27 155–76
  35. 35.  Dutta P, Kaman PK 2017. Nanocentric plant health management with special reference to silver. Int. J. Curr. Microbiol. App. Sci. 6:62821–30
    [Google Scholar]
  36. 36.  Elmer WH, De La Torre-Roche R, Pagano L, Majumdar S, Zuverza-Mena N et al. 2018. Effect of metalloid and metallic oxide nanoparticles on Fusarium wilt of watermelon. Plant Dis In press
  37. 37.  Elmer WH, White J 2016. Nanoparticles of CuO improves growth of eggplant and tomato in disease infested soils. Environ. Sci. Nano 3:1072–79
    [Google Scholar]
  38. 38.  Evans I, Solberg E, Huber DM 2007. Copper and plant disease. See Ref. 27 177–88
  39. 39.  Fang Y, Ramasamy RP 2015. Current and prospective methods for plant disease detection. Biosensors 5:3537–61
    [Google Scholar]
  40. 40.  Ferreira MAM, Filipe JA, Coelho M, Chavaglia J 2017. Nanotechnology applications in industry and medicine. Acta Sci. Intellect. 2:31–50
    [Google Scholar]
  41. 41.  Gajbhiye M, Kesharwani J, Ingle A, Gade A, Rai M 2009. Fungus-mediated synthesis of silver nanoparticles and their activity against pathogenic fungi in combination with fluconazole. Nanomed. Nanotechnol. Bio. Med. 5:4382–86
    [Google Scholar]
  42. 42.  Gao J, Gu H, Xu B 2009. Multifunctional magnetic nanoparticles: design, synthesis, and biomedical applications. Acc. Chem. Res. 42:81097–107
    [Google Scholar]
  43. 43.  Ghormade V, Deshpande MV, Paknikar KM 2011. Perspectives for nano-biotechnology enabled protection and nutrition of plants. Biotechnol. Adv. 29:6792–803
    [Google Scholar]
  44. 44.  Giannousi K, Avramidis I, Dendrinou-Samara C 2013. Synthesis, characterization and evaluation of copper based nanoparticles as agrochemicals against Phytophthora infestans. . RSC Adv 3:4421743–52
    [Google Scholar]
  45. 45.  Gogoi R, Singh PK, Kumar R, Nair KK, Alam I et al. 2013. Suitability of nano-sulphur for biorational management of powdery mildew of okra (Abelmoschus esculentus Moench) caused by Erysiphe cichoracearum. J. Plant Pathol. . Microbiol 4:471–175
    [Google Scholar]
  46. 46.  Gorny AM, Hay FS, Wang X, Pethybridge SJ 2018. Isolation of nematode DNA from 100 g of soil using Fe3O4 super paramagnetic nanoparticles. Nematology 20:271–83
    [Google Scholar]
  47. 47.  Graham JH, Johnson EG, Myers ME, Young M, Rajasekaran P et al. 2016. Potential of nano-formulated zinc oxide for control of citrus canker on grapefruit trees. Plant Dis 100:122442–47
    [Google Scholar]
  48. 48.  Hafez EE, Hassan HS, Elkady MF, Salama E 2014. Assessment of antibacterial activity for synthesized zinc oxide nanorods against plant pathogenic strains. Int. J. Sci. Technol. Res. 3:9318–24
    [Google Scholar]
  49. 49.  Hao Y, Cao X, Ma C, Zhang Z, Zhao N et al. 2017. Potential applications and antifungal activities of engineered nanomaterials against gray mold disease agent Botrytis cinerea on rose petals. Front. Plant Sci. 8:1332
    [Google Scholar]
  50. 50.  He L, Liu Y, Mustapha A, Lin M 2011. Antifungal activity of zinc oxide nanoparticles against Botrytis cinerea and Penicillium expansum. Microbiol. . Res 166:3207–15
    [Google Scholar]
  51. 51.  Hilton A, Handiseni M, Choi W, Wang X, Grauke LJ et al. 2017. Novel phytosanitary treatment of Xylella fastidiosa–infected pecan scions using carbon nanotubes Paper presented at the 109th Annual Meeting of the American Phytopathological Society San Antonio, TX: August
    [Google Scholar]
  52. 52.  Huang L, Li DQ, Lin YJ, Wei M, Evans DG et al. 2005. Controllable preparation of nano-MgO and investigation of its bactericidal properties. J. Inorg. Biochem. 99:5986–93
    [Google Scholar]
  53. 53.  Imada K, Sakai S, Kajihara H, Tanaka S, Ito S 2016. Magnesium oxide nanoparticles induce systemic resistance in tomato against bacterial wilt disease. Plant Pathol 65:4551–60
    [Google Scholar]
  54. 54.  Indhumathy M, Mala R 2013. Photocatalytic activity of zinc sulphate nano material on phytopathogens. Int. J. Agric. Environ. Biotechnol. 6:4S737–43
    [Google Scholar]
  55. 55.  Iravani S 2011. Green synthesis of metal nanoparticles using plants. Green Chem 13:102638–50
    [Google Scholar]
  56. 56.  Jagana D, Hegde YR, Lella R 2017. Green nanoparticles: a novel approach for the management of banana anthracnose caused by Colletotrichum musae. Int. J. Curr. Microbiol. Appl. Sci. 6:101749–56
    [Google Scholar]
  57. 57.  Jain KK 2005. Nanotechnology in clinical laboratory diagnostics. Clin. Chim. Acta 358:37–54
    [Google Scholar]
  58. 58.  James C 2013. Polypyrrole nanoribbon based chemiresistive immunosensors for viral plant pathogen detection. Anal. Methods 5:3497–502
    [Google Scholar]
  59. 59.  Jayaseelan C, Ramkumar R, Rahuman AA, Perumal P 2013. Green synthesis of gold nanoparticles using seed aqueous extract of Abelmoschus esculentus and its antifungal activity. Ind. Crops Prod. 45:423–29
    [Google Scholar]
  60. 60.  Jo YK, Kim BH, Jung G 2009. Antifungal activity of silver ions and nanoparticles on phytopathogenic fungi. Plant Dis 93:101037–43
    [Google Scholar]
  61. 61.  Jung JH, Kim SW, Min JS, Kim YJ, Lamsal K et al. 2010. The effect of nano-silver liquid against the white rot of the green onion caused by Sclerotium cepivorum. . Mycobiology 38:139–45
    [Google Scholar]
  62. 62.  Kadar E, Cunliffe M, Fisher A, Stolpe B, Lead J, Shi Z 2014. Chemical interaction of atmospheric mineral dust-derived nanoparticles with natural seawater—EPS and sunlight-mediated changes. Sci. Total Environ. 468:265–71
    [Google Scholar]
  63. 63.  Kanhed P, Birla S, Gaikwad S, Gade A, Seabra AB et al. 2014. In vitro antifungal efficacy of copper nanoparticles against selected crop pathogenic fungi. Mater. Lett. 115:13–17
    [Google Scholar]
  64. 64.  Kashyap PL, Rai P, Sharma S, Chakdar H, Kumar S et al. 2016. Nanotechnology for the detection and diagnosis of plant pathogens. Nanoscience in Food and Agriculture 2 S Ranjan, N Dasgupta, E. Lichtfouse 253–76 New York: Springer Int.
    [Google Scholar]
  65. 65.  Kasprowicz MJ, Kozioł M, Gorczyca A 2010. The effect of silver nanoparticles on phytopathogenic spores of Fusarium culmorum. Can. J. Microbiol. 56:247–53
    [Google Scholar]
  66. 66.  Kaushik H, Dutta P 2017. Chemical synthesis of zinc oxide nanoparticle: its application for antimicrobial activity and plant health management Paper presented at the 109th Annual Meeting of the American Phytopathological Society San Antonio, TX: August
  67. 67.  Khairnar GA, Chavan-Patil AB, Palve PR, Bhise SB, Mourya VK et al. 2010. Dendrimers: potential tool for enhancement of antifungal activity. Int. J. PharmTech Res. 2:1736–39
    [Google Scholar]
  68. 68.  Khaledian S, Nikkhah M, Shams-bakhsh M, Hoseinzadeh S 2017. A sensitive biosensor based on gold nanoparticles to detect Ralstonia solanacearum in soil. J. Gen. Plant Pathol. 83:231–39
    [Google Scholar]
  69. 69.  Khodakovskaya M, Dervishi E, Mahmood M, Xu Y, Li Z et al. 2009. Carbon nanotubes are able to penetrate plant seed coat and dramatically affect seed germination and plant growth. ACS Nano 3:103221–27
    [Google Scholar]
  70. 70.  Khot LR, Sankaran S, Maja JM, Ehsani R, Schuster E 2012. Application of nanomaterials in agricultural production and crop protection: a review. Crop Prot 35:64–70
    [Google Scholar]
  71. 71.  Kim HS, Kang HS, Chu GJ, Byun HS 2008. Antifungal effectiveness of nanosilver colloid against rose powdery mildew in greenhouses. Solid State Phenom 135:15–18
    [Google Scholar]
  72. 72.  Kim SW, Kim KS, Lamsal K, Kim YJ, Kim SB et al. 2009. An in vitro study of the antifungal effect of silver nanoparticles on oak wilt pathogen Raffaelea sp. J. Microbiol. Biotechnol. 19:8760–64
    [Google Scholar]
  73. 73.  Krishnaraj C, Ramachandran R, Mohan K, Kalaichelvan PT 2012. Optimization for rapid synthesis of silver nanoparticles and its effect on phytopathogenic fungi. Spectrochim. Acta Part A 93:95–99
    [Google Scholar]
  74. 74.  Lamsal K, Kim SW, Jung JH, Kim YS, Kim KS et al. 2011.a Application of silver nanoparticles for the control of Colletotrichum species in vitro and pepper anthracnose disease in field. Mycobiology 39:194–99
    [Google Scholar]
  75. 75.  Lamsal K, Kim SW, Jung JH, Kim YS, Kim KS et al. 2011.b Inhibition effect of silver nanoparticles against powdery mildew on cucumber and pumpkin. Mycobiology 39:26–32
    [Google Scholar]
  76. 76.  Li XM, Xu G, Liu Y, He T 2011. Magnetic Fe3O4 nanoparticles: synthesis and application in water treatment. Nanosci. Nanotechnol. Asia 1:14–24
    [Google Scholar]
  77. 77.  Liang Y, Yang D, Cui J 2017. A graphene oxide/silver nanoparticle composite as a novel agricultural antibacterial agent against Xanthomonas oryzae pv. oryzae for crop disease management. New J. Chem. 41:13692–99
    [Google Scholar]
  78. 78.  Liao Y-Y, Strayer AL, White JC, Mukherjee A, De La Torre-Roche R et al. 2017. Magnesium oxide nanomaterial, a novel bactericide for control of bacterial spot of tomato without accumulating in fruit Paper presented at the 109th Annual Meeting of the American Phytopathological Society San Antonio, TX: August
    [Google Scholar]
  79. 79.  Lin H-Y, Huang C-H, Lu S-H, Kuo I-T, Chau L-K 2014. Direct detection of orchid viruses using nanorod-based fiber optic particle plasmon resonance immunosensor. Biosens. Bioelectron. 51:371–78
    [Google Scholar]
  80. 80.  Liu S, Wei L, Hao L, Fang N, Chang MW et al. 2009. Sharper and faster “nano darts” kill more bacteria: a study of antibacterial activity of individually dispersed pristine single-walled carbon nanotube. ACS Nano 3:123891–902
    [Google Scholar]
  81. 81.  López MM, Llop P, Olmos A, Marco-Noales E, Cambra M, Bertolini E 2009. Are molecular tools solving the challenges posed by detection of plant pathogen bacteria and viruses?. Curr. Issues Mol. Biol. 11:113–46
    [Google Scholar]
  82. 82.  Mallaiah B 2015. Integrate approaches for the management of Crossandra (Crossandra infundibuliformis L. nees) wilt caused by Fusarium incarnatum (Desm.) Sacc PhD Thesis Tamil Nadu Agric. Univ. Madurai, India:
    [Google Scholar]
  83. 83.  Matouskova P, Marova I, Bokrova J, Benesova P 2016. Effect of encapsulation on antimicrobial activity of herbal extracts with lysozyme. Food Technol. Biotechnol. 54:3304–16
    [Google Scholar]
  84. 84.  Min JS, Kim KS, Kim SW, Jung JH, Lamsal K et al. 2009. Effects of colloidal silver nanoparticles on sclerotium-forming phytopathogenic fungi. Plant Pathol. J. 25:4376–80
    [Google Scholar]
  85. 85.  Mishra S, Singh BR, Singh A, Keswani C, Naqvi AH, Singh HB 2014. Biofabricated silver nanoparticles act as a strong fungicide against Bipolaris sorokiniana causing spot blotch disease in wheat. PLOS ONE 9:5e97881
    [Google Scholar]
  86. 86.  Mittal AK, Chisti Y, Banerjee UC 2013. Synthesis of metallic nanoparticles using plant extracts. Biotechnol. Adv. 31:2346–56
    [Google Scholar]
  87. 87.  Morteza E, Moaveni P, Farahani HA, Kiyani M 2013. Study of photosynthetic pigments changes of maize (Zea mays L.) under nano TiO2 spraying at various growth stages. SpringerPlus 2:1247
    [Google Scholar]
  88. 88.  Moussa SH, Tayel AA, Alsohim AS, Abdallah RR 2013. Botryticidal activity of nanosized silver-chitosan composite and its application for the control of gray mold in strawberry. J. Food Sci. 78:10589–94
    [Google Scholar]
  89. 89.  Nair R, Varghese SH, Nair BG, Maekawa T, Yoshida Y et al. 2010. Nanoparticulate material delivery to plants. Plant Sci 179:154–63
    [Google Scholar]
  90. 90.  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. 140:2185–92
    [Google Scholar]
  91. 91.  Nassar AM 2016. Effectiveness of silver nano-particles of extracts of Urtica urens (Urticaceae) against root-knot nematode Meloidogyne incognita. Asian J. . Nematol 5:14–19
    [Google Scholar]
  92. 92.  Navarro E, Baun A, Behra R, Hartmann NB, Filser J et al. 2008. Environmental behavior and ecotoxicity of engineered nanoparticles to algae, plants, and fungi. Ecotoxicology 17:5372–86
    [Google Scholar]
  93. 93.  Nezhad AS 2014. Future of portable devices for plant pathogen diagnosis. Lab Chip 14:2887–904
    [Google Scholar]
  94. 94.  Ni D, Bu W, Ehlerding EB, Cai W, Shi J 2017. Engineering of inorganic nanoparticles as magnetic resonance imaging contrast agents. Chem. Soc. Rev. 46:7438–68
    [Google Scholar]
  95. 95.  Ocsoy I, Paret ML, Ocsoy MA, Kunwar S, Chen T et al. 2013. Nanotechnology in plant disease management: DNA-directed silver nanoparticles on graphene oxide as an antibacterial against Xanthomonas perforans. . ACS Nano 7:108972–80
    [Google Scholar]
  96. 96.  Ouda SM 2014. Antifungal activity of silver and copper nanoparticles on two plant pathogens, Alternaria alternata and Botrytis cinerea. Res. J. Microbiol. 9:134–42
    [Google Scholar]
  97. 97.  Owolade OF, Ogunleti DO, Adenekan MO 2008. Titanium dioxide affects disease development and yield of edible cowpea. EJEAF Chem 7:502942–47
    [Google Scholar]
  98. 98.  Paret ML, Palmateer AJ, Knox GW 2013.a Evaluation of a light-activated nanoparticle formulation of titanium dioxide with zinc for management of bacterial leaf spot on rosa ‘Noare’. HortScience 48:2189–92
    [Google Scholar]
  99. 99.  Paret ML, Vallad EG, Averett RD, Jones BJ, Olson MS 2013.b Photocatalysis: effect of light-activated nanoscale formulations of TiO2 on Xanthomonas perforans, and control of bacterial spot of tomato. Phytopathology 103:228–36
    [Google Scholar]
  100. 100.  Park H-J, Kim SH, Kim HJ, Choi S-H 2006. A new composition of nanosized silica-silver for control of various plant diseases. Plant Pathol. J. 22:295–302
    [Google Scholar]
  101. 101.  Paulkumar K, Gnanajobitha G, Vanaja M, Rajeshkumar S, Malarkodi C et al. 2014. Piper nigrum leaf and stem assisted green synthesis of silver nanoparticles and evaluation of its antibacterial activity against agricultural plant pathogens. Sci. World J. 2014:829894
    [Google Scholar]
  102. 102.  Perdikaris A, Vassilakos N, Yiakoumettis I, Kektsidou O, Kintzios S 2011. Development of a portable, high throughput biosensor system for rapid plant virus detection. J. Virol. Methods 177:94–99
    [Google Scholar]
  103. 103.  Pérez‐de‐Luque A, Cifuentes Z, Beckstead JA, Sillero JC, Ávila C et al. 2012. Effect of amphotericin B nanodisks on plant fungal diseases. Pest Manag. Sci. 68:167–74
    [Google Scholar]
  104. 104.  Poland CA, Duffin R, Kinloch I, Maynard A, Wallace WA et al. 2008. Carbon nanotubes introduced into the abdominal cavity of mice show asbestos-like pathogenicity in a pilot study. Nat. Nanotechnol. 3:7423–28
    [Google Scholar]
  105. 105.  Ponmurugan P, Manjukarunambika K, Elango V, Gnanamangai BM 2016. Antifungal activity of biosynthesised copper nanoparticles evaluated against red root-rot disease in tea plants. J. Exp. Nanosci. 11:131019–31
    [Google Scholar]
  106. 106.  Rad F, Mohsenifar A, Tabatabaei M, Safarnejad MR, Shahryari F et al. 2012. Detection of Candidatus Phytoplasma aurantifolia with a quantum dots FRET-based biosensor. J. Plant Pathol. 94:3525–34
    [Google Scholar]
  107. 107.  Rajesh S, Raja DP, Rathi JM, Sahayaraj K 2012. Biosynthesis of silver nanoparticles using Ulva fasciata (Delile) ethyl acetate extract and its activity against Xanthomonas campestris pv. malvacearum. J. Biopestic. 5:119–28
    [Google Scholar]
  108. 108.  Rajiv P, Rajeshwari S, Venckatesh R 2013. Bio-fabrication of zinc oxide nanoparticles using leaf extract of Parthenium hysterophorus L. and its size-dependent antifungal activity against plant fungal pathogens. Spectrochim. Acta Part A 112:384–87
    [Google Scholar]
  109. 109.  Rao KJ, Paria S 2013. Use of sulfur nanoparticles as a green pesticide on Fusarium solani and Venturia inaequalis phytopathogens. RSC Adv 3:2610471–78
    [Google Scholar]
  110. 110.  Richards RM 1981. Antimicrobial action of silver nitrate. Microbios 31:83–91
    [Google Scholar]
  111. 111.  Rico CM, Hong J, Morales MI, Zhao L, Barrios AC et al. 2013. Effect of cerium oxide nanoparticles on rice: a study involving the antioxidant defense system and in vivo fluorescence imaging. Environ. Sci. Technol. 47:115635–42
    [Google Scholar]
  112. 112.  Rispail N, Matteis LD, Santos R, Miguel AS et al. 2014. Quantum dot and superparamagnetic nanoparticle interaction with pathogenic fungi: internalization and toxicity profile. ACS Appl. Mater. Interfaces 6:129100–10
    [Google Scholar]
  113. 113.  Safarpour H, Safarnejad MR, Tabatabaei M, Mohsenifar A, Rad F et al. 2012. Development of a quantum dots FRET-based biosensor for efficient detection of Polymyxa betae. Can. J. Plant Pathol 34:507–15
    [Google Scholar]
  114. 114.  Sardella D, Gatt R, Valdramidis V 2017. Physiological effects and mode of action of ZnO nanoparticles against postharvest fungal contaminants Paper presented at the 109th Annual Meeting of the American Phytopathological Society San Antonio, TX: August
  115. 115.  Sarlak N, Taherifar A, Salehi F 2014. Synthesis of nanopesticides by encapsulating pesticide nanoparticles using functionalized carbon nanotubes and application of new nanocomposite for plant disease treatment. J. Agric. Food Chem. 62:214833–38
    [Google Scholar]
  116. 116.  Sawangphruk M, Srimuk P, Chiochan P, Sangsri T, Siwayaprahm P 2012. Synthesis and antifungal activity of reduced graphene oxide nanosheets. Carbon 50:145156–61
    [Google Scholar]
  117. 117.  Sekhon BS 2014. Nanotechnology in agri-food production: an overview. Nanotechnol. Sci. Appl. 7:31–53
    [Google Scholar]
  118. 118.  Servin A, Elmer W, Mukherjee A, De la Torre-Roche R, Hamdi H et al. 2015. Review of the use of engineered nanomaterials to suppress plant disease and enhance crop yield. J. Nanopart. Res. 17:92–103
    [Google Scholar]
  119. 119.  Sharma H, Dhirta B, Shirkot P 2017. Evaluation of biogenic iron nano formulations to control Meloidogyne incognita in okra. Int. J. Chem. Stud. 5:5278–84
    [Google Scholar]
  120. 120.  Shew HD, Fichtner EJ, Benson DM 2007. Aluminum and plant disease. Mineral Nutrition and Plant Disease LE Datnoff, WH Elmer, DM Huber 247–64 St. Paul, MN: APS Press
    [Google Scholar]
  121. 121.  Singh S, Gupta AK, Gupta S, Gupta S, Kumar A 2014. Surface plasmon resonance (SPR) and cyclic voltammetry based immunosensor for determination of teliosporic antigen and diagnosis of Karnal Bunt of wheat using anti-teliosporic antibody. Sens. Actuators B 191:866–73
    [Google Scholar]
  122. 122.  Singh S, Singh M, Agrawal VV, Kumar A 2010. An attempt to develop surface plasmon resonance based immunosensor for Karnal bunt (Tilletia indica) diagnosis based on the experience of nano-gold based lateral flow immuno-dipstick test. Thin Solid Films 519:1156–59
    [Google Scholar]
  123. 123.  Solgi M, Kafi M, Taghavi TS, Naderi R 2009. Essential oils and silver nanoparticles (SNP) as novel agents to extend vase-life of gerbera (Gerbera jamesonii cv. ‘Dune’) flowers. Postharvest Biol. Technol. 53:3155–58
    [Google Scholar]
  124. 124.  Steindler L, Venturi V 2006. Detection of quorum-sensing N-acyl homoserine lactone signal molecules by bacterial biosensors. FEMS Microbiol. Lett. 266:11–9
    [Google Scholar]
  125. 125.  Strayer-Scherer AL, Liao YY, Young M, Ritchie L, Vallad GE et al. 2018. Advanced copper composites against copper-tolerant Xanthomonas perforans and tomato bacterial spot. Phytopathology 108:196–205
    [Google Scholar]
  126. 126.  Suriyaprabha R, Karnunkaran G, Kavitha K, Yuvakkumar R, Rajendran V, Kannan N Application of silica nanoparticles in maize to enhance fungal resistance. IET Nanobiotechnol 8:133–37
    [Google Scholar]
  127. 127.  Tartaj P, del Puerto Morales M, Veintemillas-Verdaguer S, González-Carreño T, Serna CJ 2003. The preparation of magnetic nanoparticles for applications in biomedicine. J. Phys. D 36:13182
    [Google Scholar]
  128. 128.  Thompson IA, Huber DM 2007. Manganese and plant disease. See Ref. 27 139–54
  129. 129.  Tilman D, Balzer C, Hill J, Befort BL 2011. Global food demand and the sustainable intensification of agriculture. PNAS 108:5020260–64
    [Google Scholar]
  130. 130.  Torney F, Trewyn BG, Lin VSY, Wang K 2007. Mesoporous silica nanoparticles deliver DNA and chemicals into plants. Nat. Nanotechnol. 2:5295–300
    [Google Scholar]
  131. 131.  Tothill IE 2011. Biosensors and nanomaterials and their application for mycotoxin determination. World Mycotoxin J 4:4361–74
    [Google Scholar]
  132. 132.  Tripathi S, Sonkar SK, Sarkar S 2011. Growth stimulation of gram (Cicer arietinum) plant by water soluble carbon nanotubes. Nanoscale 3:31176–81
    [Google Scholar]
  133. 133.  van Viet P, Nguyen HN, Cao TM, van Hieu L 2016. Fusarium antifungal activities of copper nanoparticles synthesized by a chemical reduction method. Nanomaterials 2016:e1957612
    [Google Scholar]
  134. 134.  Wang Q, Ebbs SD, Chen Y, Ma X 2013. Trans-generational impact of cerium oxide nanoparticles on tomato plants. Metallomics 5:6753–59
    [Google Scholar]
  135. 135.  Wang X, Liu X, Chen J, Han H, Yuan Z 2014. Evaluation and mechanism of antifungal effects of carbon nanomaterials in controlling plant fungal pathogen. Carbon 68:798–806
    [Google Scholar]
  136. 136.  Wang X, Liu X, Han HY 2013. Evaluation of antibacterial effects of carbon nanomaterials against copper-resistant Ralstonia solanacearum. Colloids Surf. . B 103:1136–42
    [Google Scholar]
  137. 137.  Wang X, Liu X, Han HY, Gu XX, Chen K, Lu DL 2012. Multi-walled carbon nanotubes can enhance root elongation of wheat (Triticum aestivum) plants. J. Nanopart. Res. 14:6841–50
    [Google Scholar]
  138. 138.  Wang Z, Xie X, Zhao J, Liu X, Feng W et al. 2012. Xylem- and phloem-based transport of CuO nanoparticles in maize (Zea mays L.). Environ. Sci. Technol. 46:4434–41
    [Google Scholar]
  139. 139.  Wani AH, Shah MA 2012. A unique and profound effect of MgO and ZnO nanoparticles on some plant pathogenic fungi. J. Appl. Pharm. Sci. 2:340–44
    [Google Scholar]
  140. 140.  Waychunas GA 2009. Natural nanoparticle structure, properties and reactivity from X-ray studies. Powder Diffr. J. 24:289–93
    [Google Scholar]
  141. 141.  Woo KS, Kim KS, Lamsal K, Kim YJ, Kim SB et al. 2009. An in vitro study of the antifungal effect of silver nanoparticles on oak wilt pathogen Raffaelea sp. J. Microbiol. Biotechnol. 19:760–64
    [Google Scholar]
  142. 142.  Wood BW, Reilly CC 2007. Nickel and plant disease. See Ref. 27 215–32
  143. 143.  Xie J, Chen K, Lee HY, Xu C, Hsu AR et al. 2008. Ultrasmall c (RGDyK)-coated Fe3O4 nanoparticles and their specific targeting to integrin αvβ3-rich tumor cells. J. Am. Chem. Soc. 130:247542–43
    [Google Scholar]
  144. 144.  Yao KS, Li SJ, Tzeng KC, Cheng TC, Chang CY et al. 2009. Fluorescence silica nanoprobe as a biomarker for rapid detection of plant pathogens. Adv. Mater. Res. 79:513–16
    [Google Scholar]
  145. 145.  Young M, Ozcan A, Myers ME, Johnson EG, Graham JH et al. 2017. Multimodal generally recognized as safe ZnO/nanocopper composite: a novel antimicrobial material for the management of citrus phytopathogens. J. Agric. Food Chem. In press
  146. 146.  Zhang P, Ma Y, Zhang Z, He X, Zhang J et al. 2012. Biotransformation of ceria nanoparticles in cucumber plants. ACS Nano 6:119943–50
    [Google Scholar]
  147. 147.  Zhang Z, Balogh D, Wang F, Willner I 2013. Smart mesoporous SiO2 nanoparticles for the DNAzyme-induced multiplexed release of substrates. J. Am. Chem. Soc. 135:51934–40
    [Google Scholar]
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