Have a personal or library account? Click to login
Silicon Titanium Oxide Nanoparticles Can Stimulate Plant Growth and the Photosynthetic Pigments on Lettuce Crop Cover

Silicon Titanium Oxide Nanoparticles Can Stimulate Plant Growth and the Photosynthetic Pigments on Lettuce Crop

Open Access
|Jan 2021

References

  1. AL MURAD, M. ‒ KHAN, A.L. ‒ MUNEER, S. 2020. Silicon in horticultural crops: Cross-talk, signalling, and tolerance mechanism under salinity stress. In Plants, vol. 9, no. 4, 460. DOI: 10.3390/plants9040460.10.3390/plants9040460
  2. ALIABADI, T. ‒ AFSHAR, A.S. ‒ NEMATPOUR, F.S. 2016. The effects of nano TiO2 and Nano aluminium on the growth and some physiological parameters of the wheat (Triticum aestivum). In Iranian Journal of Plant Physiology, vol. 6, no. 2, pp. 1627 ‒ 1635. DOI: 10.22034/ijpp.2016.539828.
  3. ANDERSEN, C. ‒ KING, G. ‒ PLOCHER, M. ‒ STORM, M. ‒ POKHREL, L. ‒ JOHNSON, M. ‒ RYGIEWICZ, P. 2016. Germination and early plant development of ten plant species exposed to titanium dioxide and cerium oxide nanoparticles. In Environmental Toxicology and Chemistry, vol. 35, no. 9, pp. 2223 ‒ 9. DOI: 10.1002/etc.3374.10.1002/etc.3374
  4. ASHKAVAND, P. ‒ ZARAFSHAR, M. ‒ TABARI, M. ‒ MIRZAIE, J. ‒ NIKPOUR, A. ‒ BORDBAR, S.K. ‒ STRUVE, D. ‒ GABRIEL, S.G. 2018. Application of SiO2 nanoparticles as pretreatment alleviates the impact of drought on the physiological performance of Prunus mahaleb (rosaceae). In Boletin De La Sociedad Argentina De Botanica, vol. 53, no. 2, pp. 207 ‒ 219. DOI: 10.31055/1851.2372.v53.n2.20578.10.31055/1851.2372.v53.n2.20578
  5. BAKER, N. ‒ ROSENQVIST, E. 2004. Applications of chlorophyll fluorescence can improve crop production strategies: an examination of future possibilities. In Journal of Experimental Botany, vol. 55, no. 403, pp. 1607 – 1621. DOI: 10.1093/jxb/erh196.10.1093/jxb/erh196
  6. BARAZZOUK, S. ‒ BEKALÉ, L. ‒ HOTCHANDANI, S. 2012. Enhanced photostability of chlorophyll-a using gold nanoparticlesas an efficient photoprotector. In Journal of Material Chemistry, no. 22, pp. 25316 ‒ 25324. DOI: 10.1039/C2JM33681B.10.1039/c2jm33681b
  7. BASTOS, V. ‒ DE OLIVEIRA, J.F. ‒ BROWN, D. ‒ JONHSTON, H. ‒ MALHEIRO, E. ‒ DANIEL-DA-SILVA, A.L. ‒ DUARTE, I.F. ‒ SANTOS, C. ‒ OLIVEIRA, H. 2016. The influence of Citrate or PEG coating on silver nanoparticle toxicity to a human keratinocyte cell line. In Toxicology Letters, vol. 249, pp. 29 ‒ 41. DOI: 10.1016/j.toxlet.2016.03.005.10.1016/j.toxlet.2016.03.005
  8. BEHBOUDI, F. ‒ SARVESTANI, Z.T. ‒ KASSAEE, M.Z. ‒ MODARES, S.A.M. 2018. Improving growth and yield of wheat under drought stress via application of SiO2 nanoparticles. In Journal of Agricultural Science and Technology, vol. 20, no. 7, pp. 1479 ‒ 1492.
  9. BUSSOTTI, F. − DESOTGIU, R. − CASCIO, C. − POLLASTRINI, M. − GRAVANO, E. − GEROSA, G. − MARZOULI, R. − NALI, C. − LORENZINI, G. − SALVATORI, E. − MANES, F. − SCHAUB, M. − STRASSER, R.J. 2011. Ozone stress in woody plants assessed with chlorophyll a fluorescence. A critical reassessment of existing data. In Environmental and Experimental Botany, vol. 73, pp. 19 − 30.
  10. BOUGUERRA, S. ‒ GAVINA, A. ‒ KSIBI, M. ‒ RASTEIRO, M.D.A.G. ‒ ROCHA-SANTOS, T. ‒ PEREIRA, R. 2016. Ecotoxicity of titanium silicon oxide (TiSiO4) nanomaterial for terrestrial plants and soil invertebrate species. In Ecotoxicology and Environmental Safety, vol. 129, pp. 291 ‒ 301. DOI: 10.1016/j.ecoenv.2016.03.038.10.1016/j.ecoenv.2016.03.038
  11. COSTA, B.N.S. ‒ COSTA, I.D.J.S. ‒ DIAS, G.D.M.G. ‒ ASSIS, F.A.D. ‒ PIO, L.A.S. ‒ SOARES, J.D.R. ‒ PASQUAL, M. 2018. Morpho-anatomical and physiological alterations of passion fruit fertilized with silicone. In Pesquisa Agropecuária Brasileira, vol. 53, no. 2, pp. 163 ‒ 171. DOI: 10.1590/s0100-204x2018000200004.10.1590/s0100-204x2018000200004
  12. COX, A. ‒ VENKATACHALAM, P. ‒ SAHI, S. ‒ SHARMA, N. 2016. Silver and titanium dioxide nanoparticle toxicity in plants: A review of current research. In Plant Physiology and Biochemistry, vol. 107, pp. 147 ‒ 163. DOI: 10.1016/j.plaphy.2016.05.022.10.1016/j.plaphy.2016.05.022
  13. CUI, H. ‒ ZHANG, P. ‒ GU, W. ‒ JIANG, J. 2009. Application of anatasa TiO2 sol derived from peroxotitannic acid in crop diseases control and growth regulation. In NSTI-Nanotech, vol. 2, pp. 286 ‒ 289.
  14. DA COSTA, M.V.J. ‒ SHARMA, P.K. 2015. Influence of Titanium dioxide nanoparticles on photosynthetic and biochemical processes in Oryza sativa. In International Journal of Recent Scientific Research, vol. 6, no. 1, pp. 2445 ‒ 2451.
  15. DA-YONG, L. ‒ ZHI-AN, Z. ‒ DIAN-JUN, Z. ‒ LI-YAN, J. ‒ YUAN-LI, W. 2012. Comparison of net photosynthetic rate in leaves of soybean with different yield levels. In Journal of Northeast Agricultural University (English Edition), vol. 19, no. 3, pp. 14 ‒ 19. DOI: 10.1016/S1006-8104(13)60017-3.10.1016/S1006-8104(13)60017-3
  16. DIAS, M.C. ‒ SANTOS, C. ‒ PINTO, G. ‒ SILVA, A.M.S. ‒ SILVA, S. 2019. Titanium dioxide nanoparticles impaired both photochemical and non-photochemical phases of photosynthesis in wheat. In Protoplasma, vol. 256, pp. 69 ‒ 78. DOI: 10.1007/s00709-018-1281-6.10.1007/s00709-018-1281-629961120
  17. DUHAN, J. ‒ KUMAR, R. ‒ KUMAR, N. ‒ KAAUR, P. ‒ NEHRA, K. ‒ DUHAN, S. 2017. Nanotechnology: The new perspective in precision agriculture. In Biotechnology Reports, vol. 15, pp. 11 − 23. DOI: 10.1016/j.btre.2017.03.002.10.1016/j.btre.2017.03.002545408628603692
  18. EL-RAMADY, H. ‒ ABDALLA, N. ‒ ALSHAAL, T. ‒ EL-HENAWY, A. ‒ ELMAHROUK, M. ‒ BAYOUMI, Y. ‒ SHALABY, T. ‒ AMER, M. ‒ SHEHATA, S. − FÁRI, M. ‒ DOMOKOS-SZABOLCSY, É. 2018. Plant nano-nutrition: perspectives and challenges. In GOTHANDAM, K.M. et al. (Eds.), Nanotechnology, Food Security and Water Treatment. Springer International Publishing AG, Cham. pp. 129 ‒ 161. DOI: 10.1007/978-3-319-70166-0.10.1007/978-3-319-70166-0
  19. ETESAMI, H. ‒ JEONG, B.R. 2018. Silicon (Si): Review and future prospects on the action mechanisms in alleviating biotic and abiotic stresses in plants. In Ecotoxicology and Environmental Safety, vol. 147, pp. 881 ‒ 896. DOI: 10.1016/j.ecoenv.2017.09.063.10.1016/j.ecoenv.2017.09.06328968941
  20. FRAZIER, T. ‒ BURKLEW, C. ‒ ZHANG, B. 2014. Titanium dioxide nanoparticles affect the growth and microRNA expression of tobacco (Nicotiana tabacum). In Functional & Integrative Genomic, vol. 14, no. 1, pp. 75 ‒ 83. DOI: 10.1007/s10142-013-0341-4.10.1007/s10142-013-0341-424132512
  21. GHOSH, M. ‒ GHOSH, I. ‒ GODDERIS, L. ‒ HOET, P. ‒ MUKHERJEE, A. 2019. Genotoxicity of engineered nanoparticles in higher plants. In Mutation Research/Genetic Toxicology and Environmental mutagenesis, vol. 842, pp. 132 − 145. DOI: 10.1016/j.mrgentox.2019.01.002.10.1016/j.mrgentox.2019.01.00231255221
  22. GOHARI, G. ‒ MOHAMMADI, A. ‒ AKBARI, A. ‒ PANAHIRAD, S. ‒ DADPOUR, M.R. ‒ FOTOPOULOS, V. ‒ KIMURA, S. 2020. Titanium dioxide nanoparticles (TiO2 NPs) promote growth and ameliorate salinity stress effects on essential oil profile and biochemical attributes of Dracocephalum moldavica. In Scientific Reports, vol. 10, no. 1, pp. 1 ‒ 14. DOI: 10.1038/s41598-020-57794-1.10.1038/s41598-020-57794-1697658631969653
  23. GUERRIERO, G. ‒ HAUSMAN, J.F. ‒ LEGAY, S. 2016. Silicon and the plant extracellular matrix. In Frontiers in Plant Science, vol. 7, pp. 463. DOI: 10.3389/fpls.2016.00463.10.3389/fpls.2016.00463482843327148294
  24. GRACIA, L. ‒ BELTRÁN, A. ‒ ERRANDONEA, D. 2009. Characterization of the TiSiO4 structure and its pressure-induced phase transformations: Density functional theory study. In Physical Review B, vol. 80, no. 9, 094105. DOI: 10.1103/PhysRevB.80.094105.10.1103/PhysRevB.80.094105
  25. IRIGOYEN, J.J. ‒ EMERICH, D.W. ‒ SÁNCHEZ-DÍAZ, M. 1992. Water stress induced changes in concentrations of proline and total soluble sugars in nodulated alfalfa (Medicago sativa) plants. In Physiologia Plantarum, vol. 84, no. 1, pp. 55 ‒ 60. DOI: 10.1111/j.1399-3054.1992.tb08764.x.10.1111/j.1399-3054.1992.tb08764.x
  26. JABERZADEH, A. ‒ MOAVENI, P. ‒ MOGHADAM, H.R.T. ‒ ZAHEDI, H. 2013. Influence of bulk and nanoparticles titanium foliar application on some agronomic traits, seed gluten and starch contents of wheat subjected to water deficit stress. In Notulae Botanicae Horti Agrobotanici Cluj-Napoca, vol. 41, no. 1, pp. 201 – 207. DOI: org/10.15835/nbha4119093.
  27. JAMPÍLEK, J. ‒ KRÁĽOVÁ K. 2017. Nanomaterials for delivery of nutrients and growth-promoting compounds to plants. In PRASAD, R. ‒ KUMAR M. ‒ KUMAR V. (Eds.), Nanotechnology. Springer, Singapore. DOI: 10.1007/978-981-10-4573-8_9.10.1007/978-981-10-4573-8_9
  28. JI, Y. ‒ ZHOU, Y. ‒ MA, C. ‒ FENG, Y. ‒ HAO, Y. ‒ RUI, Y. ‒ WU, W. ‒ GUI, X. ‒ LE, V. ‒ HAN, Y. ‒ WANG, Y. ‒ XING, B. ‒ LIU, L. ‒ CAO, W. ‒ 2017. Jointed toxicity of TiO2 NPs and Cd to rice seedlings: NPs alleviated Cd toxicity and Cd promoted NPs uptake. In Plant Physiology and Biochemistry, vol. 110, pp. 82 ‒ 93. DOI: 10.1016/j.plaphy.2016.05.010.10.1016/j.plaphy.2016.05.010
  29. KOVÁČIK, P. − HAVRLENTOVÁ, M. − ŠIMANSKÝ, V. 2014. Growth and yield stimulation of winter oilseed rape (Brasssica napus L.) by Mg-Titanit fertiliser. In Agriculture (Pol’nohospodárstvo), vol. 60, no. 4, pp.132 − 141. DOI: 10.1515/agri-2015-0002.10.1515/agri-2015-0002
  30. KARUNAKARAN, G. ‒ SURIYAPRABHA, R. ‒ RAJENDRAN, V. ‒ KANNAN, N. 2017. Influence of ZrO2, SiO2, Al2O3 and TiO2 nanoparticles on maize seed germination under different growth conditions. In IET Nanobiotechnology, vol. 10, no. 4, pp. 171 ‒ 177. DOI: 10.1049/ietnbt.2015.0007.
  31. KHEYRKHAH, M. ‒ JANMOHAMMADI, M. ‒ ABBASI, A. ‒ SABAGHNIA, N. 2018. The effects of micronutrients (Fe And Zn) and beneficial nano-scaled elements (Si And Ti) on some morphophysiological characteristics of oilseed rape hybrids. In Agriculture (Pol’nohospodárstvo), vol. 64, no. 3, pp. 116 ‒ 127. DOI: 10.2478/agri-2018-0012.10.2478/agri-2018-0012
  32. LEI, Z. ‒ MINGYU, S. ‒ CHAO, L. ‒ LIANG, C. ‒ HAO, H. ‒ XIAO, W. ‒ XIAOQING, L. ‒ FAN, Y. ‒ FENGQING, G. ‒ FASHUI, H. 2007. Effects of Nanoanatase TiO2 on photosynthesis of spinach chloroplasts under different light illumination. In Biological Trace Element Research, vol. 119, no. 1, pp. 68 ‒ 76. DOI: 10.1007/s12011-007-0047-3.10.1007/s12011-007-0047-3
  33. LI, D. ‒ TIAN, M. ‒ CAI, J. ‒ JIANG, D. ‒ CAO, W. ‒ DAI, T. 2013. Effects of low nitrogen supply on relationships between photosynthesis and nitrogen status at different leaf position in wheat seedlings. In Plant Growth Regulation, vol. 70, no. 3, pp. 257 ‒ 263. DOI: 10.1007/s10725-013-9797-4.10.1007/s10725-013-9797-4
  34. LI, Z. ‒ SONG, Z. ‒ YAN, Z. ‒ HAO, Q. ‒ SONG, A. ‒ LIU, L. ‒ YANG, X. ‒ XIA, S. ‒ LIANG, Y. 2018. Silicon enhancement of estimated plant biomass carbon accumulation under abiotic and biotic stresses. A meta-analysis. In Agronomy for Sustainable Development, vol. 38, no. 3, article 26. DOI: 10.1007/s13593-018-0496-4.10.1007/s13593-018-0496-4
  35. LIMA, A. ‒ DAMATTA, F. ‒ PINHEIRO, H. ‒ TOTOLA, M. ‒ LOUREIRO, M. 2002. Photochemical responses and oxidative stress in two clones of Coffea canephora under water deficit conditions. In Environmental and Experimental Botany, vol. 47, no. 3, pp. 239 ‒ 247. DOI: 10.1016/S0098-8472(01)00130-7.10.1016/S0098-8472(01)00130-7
  36. LIU, H. ‒ LIU, Z.T. ‒ REN, J. ‒ LIU, Q.J. 2017. Structural, electronic, mechanical, dielectric and optical properties of TiSiO4: First-principles study. In Solid State Communication, vol. 251, pp. 43 ‒ 49. DOI: 10.1016/j.ssc.2016.12.013.10.1016/j.ssc.2016.12.013
  37. LUYCKX, M. ‒ HAUSMAN, J.F. ‒ LUTTS, S. ‒ GUERRIERO, G. 2017. Silicon and plants: current knowledge and technological perspectives. In Frontier in Plant Science, vol. 8, 411. DOI: 10.3389/fpls.2017.00411.10.3389/fpls.2017.00411536259828386269
  38. LYU, S. ‒ WEI, X. ‒ CHEN, J. ‒ WANG, C. ‒ WANG, X. ‒ PAN, D. 2017. Titanium as a beneficial element for crop production. In Frontier in Plant Science, vol. 8, 597. DOI: 10.3389/fpls.2017.00597.10.3389/fpls.2017.00597540450428487709
  39. MAITY, A. ‒ NATARAJAN, N. ‒ VIJAY, D. ‒ SRINIVASAN, R. ‒ PASTOR, M. ‒ MALAVIYA, D.R. 2018. Influence of metal nanoparticles (NPs) on germination and yield of oat (Avena sativa) and berseem (Trifolium alexandrinum). In Proceedings of the National Academy of Sciences, India Section B: Biological Sciences, vol. 88, pp. 595 ‒ 607. DOI: 10.1007/s40011-016-0796-x.10.1007/s40011-016-0796-x
  40. MAITY, A. ‒ NATARAJAN, N. ‒ PASTOR, M. ‒ VIJAY, D. ‒ GUPTA, C.K. ‒ WASNIK, V.K. 2018. Nanoparticles influence seed germination traits and seed pathogen infection rate in forage sorghum (Sorghum bicolour) and cowpea (Vigna unguiculata). In Indian Journal of Experimental Biology, vol. 56, pp. 363 ‒ 372.
  41. MAXWELL, K. ‒ JOHNSON, G. 2000. Chlorophyll fluorescence ‒ a practical guide. In Journal of Experimental Botany, vol. 51, no. 345, pp. 659 – 668. DOI: 10.1093/jexbot/51.345.659.10.1093/jexbot/51.345.659
  42. MEENA, R. ‒ RUCHITA, P. ‒ NARAYAN, S. ‒ MADHU, R. ‒ PAULRAJ, R. 2012. Comparative study of TiO2 and Ti- SiO4 nanoparticles induced oxidative stress and apoptosis of HEK-293 cells. In Advanced Materials Letters, vol. 3, no. 6, pp. 459 ‒ 465. DOI: 10.5185/amlett.2012.icnano.157.10.5185/amlett.2012.icnano.157
  43. MIDDEPOGU, A. − HOU, J. − GAO, X. − LIN, D. 2018. Effect and mechanism of TiO2 nanoparticles on the photosynthesis of Chlorella pyrenoidosa. In Ecotoxicology and Environmental safety, vol. 161, pp. 497 − 506.
  44. OSAKI, M. ‒ SHINANO, T. ‒ TADANO, T. 1991. Redistribution of carbon and nitrogen-compounds from the shoot to the harvesting organs during maturation in field crops. In Soil Science and Plant Nutrition, vol. 37, no. 1, pp. 117 ‒ 128. DOI: 10.1080/00380768.1991.10415017.10.1080/00380768.1991.10415017
  45. PARISI, C. ‒ VIGANI, M. ‒ RODRÍGUEZ-CEREZO, E. 2015. Agricultural nanotechnologies: What are the current possibilities? In Nanotoday, vol. 10, no. 2, pp. 124 ‒ 127. DOI: 10.1016/j.nantod.2014.09.009.10.1016/j.nantod.2014.09.009
  46. PEREIRA, R. ‒ ROCHA-SANTOS, T.A.P. ‒ ANTUNES, F.E. ‒ RASTEIRO, M.G. ‒ RIBEIRO, R. ‒ GONÇALVES, F. ‒ SOARES, A.M.V.M. ‒ LOPES, I. 2011. Screening evaluation of the ecotoxicity and genotoxicity of soils contaminated with organic and inorganic nanoparticles: the role of ageing. In Journal of Hazardous Material, vol. 194, pp. 345 ‒ 354. DOI: 10.1016/j.jhazmat.2011.07.112.10.1016/j.jhazmat.2011.07.11221871729
  47. QI, M. ‒ LIU, Y. ‒ LI, T. 2013. Nano-TiO2 improve the photosynthesis of tomato leaves under mild heat stress. In Biological Trace Element Research, vol. 156, no. 1 ‒ 3, pp. 323 ‒ 328. DOI: 10.1007/s12011-013-9833-2.10.1007/s12011-013-9833-224214855
  48. RODRIGUEZ, E. ‒ SANTOS, C. ‒ AZEVEDO, R. ‒ CORREIA, C. ‒ MOUTINHO-PEREIRA, J. ‒ FERREIRA DE OLIVEIRA, J.M. ‒ DIAS, M.C. 2015. Photosynthesis light-independent reactions are sensitive biomarkers to monitor lead phytotoxicity in a Pb-tolerant Pisum sativum cultivar. In Environmental Science and Pollution Research, vol. 22, no. 1, pp. 574 ‒ 585. DOI: 10.1007/s11356-014-3375-9.10.1007/s11356-014-3375-925091165
  49. RODRÍGUEZ-GONZÁLEZ, V. ‒ TERASHIMA, C. ‒ FUJISHIMA, A. 2019. Applications of photocatalytic titanium dioxide-based nanomaterials in sustainable agriculture. In Journal of Photochemistry and Photobiology C: Photochemistry Reviews, vol. 40, pp. 49 ‒ 67. DOI: 10.1016/j.jphotochemrev.2019.06.001.10.1016/j.jphotochemrev.2019.06.001
  50. SANCHEZ-ZABALA, J. ‒ GONZÁLEZ-MURUA, C. ‒ MARINO, D. 2015. Mild ammonium stress increases chlorophyll content in Arabidopsis thaliana. In Plant Signaling & Behaviour, vol. 10, no. 3, e991596. DOI: 10.4161/15592324.2014.991596.10.4161/15592324.2014.991596
  51. SARMA, R.S. ‒ SHANKHDHAR, D. ‒ SRIVASTAVA, P. ‒ SHANKHDHAR, S.C. 2018. Influence of silicon solubilizers on Silicon content, chlorophyll content (mg.g-1) and photosynthetic efficiency in leaves at three different growth stages in rice genotypes. In Journal of Pharmacognosy and Phytochemistry, vol. 7, no. 2, pp. 2552 ‒ 2558.
  52. SERVIN, A.D. ‒ MORALES, M.I. ‒ CASTILLO-MICHEL, H. ‒ HERNANDEZ-VIEZCAS, J.A. ‒ MUNOZ, B. ‒ ZHAO, L. ‒ NUNEZ, J.E. ‒ PERALTA-VIDEA, J.R. ‒ GARDEA- TORRESDEY, J.L. 2013. Synchrotron verification of TiO2 accumulation in cucumber fruit: a possible pathway of TiO2 nanoparticle transfer from soil into the food chain. In Environmental Science & Technology, vol. 47, no. 20, pp. 11592 ‒ 11598. DOI: 10.1021/es403368j.10.1021/es403368j
  53. SEKHON, B.S. 2014. Nanotechnology in agri-food production: an overview. In Nanotechnology, Science and Application, vol. 7, pp. 31 – 53. DOI: 10.2147/NSA.S39406.10.2147/NSA.S39406
  54. SHABBIR, A. ‒ KHAN, M.M.A. ‒ AHMAD, B. ‒ SADIQ, Y. ‒ JALEEL, H. ‒ UDDIN, M. 2019. Efficacy of TiO2 nanoparticles in enhancing the photosynthesis, essential oil and khusimol biosynthesis in Vetiveria zizanioides L. Nash. In Photosynthetica, vol. 57, no. 2, pp. 599 ‒ 606. DOI: 10.32615/ps.2019.071.10.32615/ps.2019.071
  55. SHATILOV, M.V. − RAZIN, A.F. − IVANOVA, M.I. 2019. Analysis of the world lettuce market. In IOP Conference Series: Earth and Environmental Science, vol. 395, no. 1, p. 012053. IOP Publishing. doi : 10.1088/1755-1315/395/1/012053.
  56. SIDDIQUI, M.H. ‒ AL-WHAIBI, M.H. ‒ FIROZ, M. ‒ AL-KHAISHANY, M. 2015. Role of nanoparticles in plants. In SIDDIQUI, M.H. et al. (Eds.), Nanotechnology and Plant Sciences, Chapter 2, pp. 19 ‒ 35. DOI: 10.1007/978-3-319-14502-0_2.10.1007/978-3-319-14502-0_2
  57. SILVA, S. ‒ OLIVEIRA, H. ‒ CRAVEIRO, S.C. ‒ CALADO, A.J. ‒ SANTOS, C. 2016. Pure anatase and rutile + anatase nanoparticles differently affect wheat seedlings. In Chemosphere, vol. 151, pp. 68 ‒ 75. DOI: 10.1016/j.chemosphere.2016.02.047.10.1016/j.chemosphere.2016.02.047
  58. SILVA, S. ‒ CRAVEIRO, C. ‒ OLIVEIRA, H. ‒ SILVA, A.M.S. ‒ SANTOS, C. 2017a. Wheat chronic exposure to TiO2-nanoparticles: Cyto- and genotoxic approach. In Plant Physiology and Biochemistry, vol. 121, pp. 89 ‒ 98. DOI: 10.1016/j.plaphy.2017.10.013.10.1016/j.plaphy.2017.10.013
  59. SILVA, S. ‒ OLIVEIRA, H. ‒ SILVA, A.M.S. ‒ SANTOS, C. 2017b. The cytotoxic targets of anatase or rutile + anatase nanoparticles depend on the plant species. In Biologia Plantarum, vol. 61, no. 4, pp. 717 ‒ 725. DOI: 10.1007/s10535-017-0733-8.10.1007/s10535-017-0733-8
  60. SILVA, S. ‒ DE OLIVEIRA, J.M.P.F. ‒ DIAS, M.C. ‒ SILVA, A.M. ‒ SANTOS, C. 2019. Antioxidant mechanisms to counteract TiO2-nanoparticles toxicity in wheat leaves and roots are organ dependent. In Journal of Hazardous Materials, vol. 380, 120889. DOI: 10.1016/j.jhazmat.2019.120889.10.1016/j.jhazmat.2019.120889
  61. SIMS, D.A. ‒ GAMON, J.A. 2002. Relationships between leaf pigment content and spectral reflectance across a wide range of species, leaf structures and developmental stages. In Remote Sensing of Environment, vol. 81, no. 1 ‒ 2, pp. 337 ‒ 354. DOI: 10.1016/S0034-4257(02)00010-X.10.1016/S0034-4257(02)00010-X
  62. SONI, N. ‒ PRAKASH, S. 2012. Efficacy of fungus mediated silver and gold nanoparticles against Aedes aegypti larvae. In Parasitology Research, vol. 110, no. 1, pp. 175 – 184. DOI: 10.1007/s00436-011-2467-4.10.1007/s00436-011-2467-421647674
  63. SRIVASTAVA, V. ‒ GUSAIN, D. ‒ SHARMA, Y. 2015. Critical review on the toxicity of some widely used engineered nanoparticles. In Industrial & Engineering Chemistry Research, vol. 54, no. 24, pp. 6209 ‒ 6233. DOI: 10.1021/acs.iecr.5b01610.10.1021/acs.iecr.5b01610
  64. TAHERI, R. ‒ KOSASIH, B. ‒ ZHU, H. ‒ TIEU, A.K. 2018. Dual effects of TiSiO4 composite nanoparticles on dispersion stability and lubrication performance of vegetable oilin- water emulsions. In Lubrication Science, vol. 31, no.1 ‒ 2, DOI: 10.1002/ls.1443.10.1002/ls.1443
  65. TAN, W. ‒ DU, W. ‒ DARROUZET-NARDI, A.J. ‒ HERNANDEZ- VIEZCAS, J.A. ‒ YE, Y. ‒ PERALTA-VIDEA, J.R. ‒ GARDEA-TORRESDEY, J.L. 2018. Effects of the exposure of TiO2 nanoparticles on basil (Ocimum basilicum) for two generations. In Science of Total Environment, vol. 636, pp. 240 ‒ 248. DOI: 10.1016/j.scitotenv.2018.04.263.10.1016/j.scitotenv.2018.04.26329705436
  66. THALMANN, M. ‒ SANTELIA, D. 2017. Starch as a determinant of plant fitness under abiotic stress. In New Phytologist, vol. 214, no. 3, pp. 943 ‒ 951. DOI: 10.1111/nph.14491.10.1111/nph.1449128277621
  67. TIGHE-NEIRA, R. ‒ REYES-DÍAZ, M. ‒ NUNES-NESI, A. ‒ RECIO, G. ‒ CARMONA, E. ‒ CORGNE, A. ‒ RENGELJ, Z. ‒ INOSTROZA-BLANCHETEAU, C. 2020. Titanium di-oxide nanoparticles provoke transient increase in photosynthetic performance and differential response in antioxidant system in Raphanus sativus L. In Scientia Horticulturae, vol. 269, 109418. DOI: 10.1016/j.scienta.2020.109418.10.1016/j.scienta.2020.109418
  68. ZIDAR, P. ‒ KOS, M. ‒ ILIC, E. ‒ MAROLT, G. ‒ DROBNE, D. ‒ JEMEC KOKALJ, A. 2019 Avoidance behaviour of isopods (Porcellio scaber) exposed to food or soil contaminated with Ag- and CeO2 − nanoparticles. In Applied Soil Ecology, vol. 141, pp. 69 – 78.
  69. VARGHESE, J. ‒ JOSEPH, T. ‒ SEBASTIAN, M.T. 2011. Solgel derived TiSiO4 ceramics for high-k gate dielectric applications. In AIP Conference Proceedings, vol. 1372, no. 1, pp. 193 ‒ 197. DOI: 10.1063/1.3644442.10.1063/1.3644442
  70. WANG, Y. ‒ PENG, C. ‒ FANG, H. ‒ SUN, L. ‒ ZHANG, H. ‒ FENG, J. ‒ DUAN, D. ‒ LIU, T. ‒ SHI, J. 2015. Mitigation of Cu(II) phytotoxicity to rice (Oryza sativa L) in the presence of TiO2 and CeO2 nanoparticles combined with humic acid. In Environmental Toxicology and Chemistry, vol. 34, no. 7, pp. 1588 ‒ 1596. DOI: 10.1002/etc.2953.10.1002/etc.295325771918
  71. WANG, X.P. ‒ YANG, X.Y. ‒ CHEN, S.Y. ‒ LI, Q.Q. ‒ WANG, W. ‒ HOU, C.J. ‒ GAO, X. ‒ WANG, L. ‒ WANG, S.C. 2016. Zinc oxide nanoparticles affect biomass accumulation and photosynthesis in Arabidopsis. In Frontier in Plant Science, vol. 7, no. 6, 1243. DOI: 10.3389/fpls.2015.01243.10.3389/fpls.2015.01243470944526793220
  72. YANG, Z. ‒ CHEN, J. ‒ DOU, R. ‒ GAO, X. ‒ MAO, C. ‒ WANG, L. 2015. Assessment of the phytotoxicity of metal oxide nanoparticles on two crop plants, maize (Zea mays L.) and rice (Oryza sativa L.). In International Journal of Environmental Research and Public Health, vol. 12, no. 12, 15100-9. DOI: 10.3390/ijerph121214963.10.3390/ijerph121214963469089926633437
  73. YANG, F. ‒ HONG, F.S. ‒ YOU, W.J. ‒ LIU, C. ‒ GAO, F.Q. ‒ WU, C. ‒ YANG, P. 2006. Influences of nano-anatase TiO2 on the nitrogen metabolism of growing spinach. In Biological Trace Element Research, vol. 110, no. 2, pp. 179 ‒ 190. DOI: org/10.1385/BTER:110:2:179.
  74. YAO, K.S. – WANG, D.Y. – HO, W.Y. – YAN, J.J. – TZENG, K.C. 2007. Photocatalytic bactericidal effect of TiO2 thin film on plant pathogens. In Surface and Coatings Technology, vol. 201, no. 15, pp. 6886 ‒ 6888. DOI: 10.1016/j.surfcoat.2006.09.068.10.1016/j.surfcoat.2006.09.068
  75. ZAHRA, Z. – ARSHAD, M. – RAFIQUE, R. – MAHMOOD, A. – HABIB, A. – QAZI, I.A. – KHAN, S.A. 2015. Metallic nanoparticle (TiO2 and Fe3O4) application modifies rhizosphere phosphorus availability and uptake by Lactuca sativa. In Journal of Agricultural and Food Chemistry, vol. 63, no. 31, pp. 6876 − 6882. DOI: 10.1021/acs.jafc.5b01611.10.1021/acs.jafc.5b0161126194089
DOI: https://doi.org/10.2478/agri-2020-0014 | Journal eISSN: 1338-4376 | Journal ISSN: 0551-3677
Language: English
Page range: 148 - 160
Submitted on: May 26, 2020
|
Accepted on: Dec 14, 2020
|
Published on: Jan 29, 2021
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2021 Nuno Mariz-Ponte, Sara Sario, Rafael J. Mendes, Cristiana V. Correia, José Moutinho-Pereira, Carlos M. Correia, Conceição Santos, published by National Agricultural and Food Centre
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 3.0 License.