Physiological and metabolic responses of maize (Zea mays) plants to Fe3O4 nanoparticles

Science of The Total Environment - Tập 718 - Trang 137400 - 2020
Lei Yan1, Peiye Li1, Xiaopeng Zhao2, Rong Ji2, Lijuan Zhao2
1College of Resources and Environment, Northeast Agricultural University, Harbin 150000, China
2State Key Laboratory of Pollution Control and Resource Reuse, School of Environment, Nanjing University, Nanjing 210023, China

Tài liệu tham khảo

Benzie, 1996, The ferric reducing ability of plasma (FRAP) as a measure of “antioxidant power”: the FRAP assay, Anal. Biochem., 239, 70, 10.1006/abio.1996.0292 Blokhina, 2003, Antioxidants, oxidative damage and oxygen deprivation stress: a review, Ann. Bot., 91, 10.1093/aob/mcf118 Bohnert, 1995, Adaptations to environmental stresses, Plant Cell, 7, 1099, 10.2307/3870060 Chen, 2010, Core/shell structured hollow mesoporous nanocapsules: a potential platform for simultaneous cell imaging and anticancer drug delivery, ACS Nano, 4, 6001, 10.1021/nn1015117 Cullen, 2011, Assessing the impact of nano- and micro-scale zerovalent iron particles on soil microbial activities: particle reactivity interferes with assay conditions and interpretation of genuine microbial effects, Chemosphere, 82, 1675, 10.1016/j.chemosphere.2010.11.009 Dewanto, 2002, Thermal processing enhances the nutritional value of tomatoes by increasing total antioxidant activity, J. Agric. Food Chem., 50, 3010, 10.1021/jf0115589 Diaz, 2005, Characterization of markers to determine the extent and variability of leaf senescence in Arabidopsis. A metabolic profiling approach, Plant Physiol., 138, 898, 10.1104/pp.105.060764 Ding, 2019, Toxicological responses of Fe3O4 nanoparticles on Eichhornia crassipes and associated plant transportation, Sci. Total Environ., 671, 558, 10.1016/j.scitotenv.2019.03.344 DuBois, 1956, Colorimetric method for determination of sugars and related substances, Anal. Chem., 28, 350, 10.1021/ac60111a017 Elanchezhian, 2017, Morpho-physiological and biochemical response of maize (Zea mays L.) plants fertilized with nano-iron (Fe3O4) micronutrient, J. Plant Nutr., 40, 1969, 10.1080/01904167.2016.1270320 Forde, 2007, Glutamate in plants: metabolism, regulation, and signalling, J. Exp. Bot., 58, 2339, 10.1093/jxb/erm121 Ghafariyan, 2013, Effects of magnetite nanoparticles on soybean chlorophyll, Environmental Science & Technology, 47, 10645 Holden, 2014, Five reasons to use bacteria when assessing manufactured nanomaterial environmental hazards and fates, Curr. Opin. Biotechnol., 27, 73, 10.1016/j.copbio.2013.11.008 Hoostal, 2008, Local adaptation of microbial communities to heavy metal stress in polluted sediments of Lake Erie, FEMS Microbiol. Ecol., 65, 156, 10.1111/j.1574-6941.2008.00522.x Iannone, 2016, Impact of magnetite iron oxide nanoparticles on wheat (Triticum aestivum L.) development: evaluation of oxidative damage, Environ. Exp. Bot., 131, 77, 10.1016/j.envexpbot.2016.07.004 Jalali, 2017, Physiological effects of repeated foliar application of magnetite nanoparticles on maize plants, J. Agron. Crop Sci., 203, 593, 10.1111/jac.12208 Jambunathan, 2010, Determination and detection of reactive oxygen species (ROS), lipid peroxidation, and electrolyte leakage in plants, 291 Jayarambabu, 2018, Biogenic synthesized Fe3O4 nanoparticles affect on growth paraameter of maize (Zea Mays L.), Dig. J. Nanomater. Biostruct., 13, 903 Kiani, 2017, Design, preparation and characterization of MoO3H-functionalized Fe3O4@SiO2 magnetic nanocatalyst and application for the one-pot multicomponent reactions, Acta Chim. Slov., 707, 10.17344/acsi.2017.3208 Koch, 2004, Sucrose metabolism: regulatory mechanisms and pivotal roles in sugar sensing and plant development, Curr. Opin. Plant Biol., 7, 235, 10.1016/j.pbi.2004.03.014 Konate, 2017, Magnetite (Fe3O4) nanoparticles alleviate growth inhibition and oxidative stress caused by heavy metals in young seedlings of cucumber (Cucumis sativus L), ITM Web of Conferences, 12, 3034, 10.1051/itmconf/20171203034 Kusano, 2011, Metabolomic approaches toward understanding nitrogen metabolism in plants, J. Exp. Bot., 62, 1439, 10.1093/jxb/erq417 Lee, 2007, Simultaneous overexpression of both CuZn superoxide dismutase and ascorbate peroxidase in transgenic tall fescue plants confers increased tolerance to a wide range of abiotic stresses, J. Plant Physiol., 164, 1626, 10.1016/j.jplph.2007.01.003 Lee, 2010, Developmental phytotoxicity of metal oxide nanoparticles to Arabidopsis thaliana, Environ. Toxicol. Chem., 29, 669, 10.1002/etc.58 Liu, 2006, Expression and transcriptional regulation of amino acid transporters in plants, Amino Acids, 30, 113, 10.1007/s00726-005-0248-z Liu, 2014, Ultrasensitive detection of deltamethrin by immune magnetic nanoparticles separation coupled with surface plasmon resonance sensor, Biosens. Bioelectron., 59, 328, 10.1016/j.bios.2014.03.020 Lu, 2019, Photoelectric conversion on Earth’s surface via widespread Fe- and Mn-mineral coatings, Proc. Natl. Acad. Sci., 116, 9741, 10.1073/pnas.1902473116 Ma, 2018, Effects of UV-B radiation on the isoflavone accumulation and physiological-biochemical changes of soybean during germination: physiological-biochemical change of germinated soybean induced by UV-B, Food Chem., 250, 259, 10.1016/j.foodchem.2018.01.051 Obata, 2012, The use of metabolomics to dissect plant responses to abiotic stresses, Cell. Mol. Life Sci., 69, 3225, 10.1007/s00018-012-1091-5 Obata, 2015, Metabolite profiles of maize leaves in drought, heat, and combined stress field trials reveal the relationship between metabolism and grain yield, Plant Physiol., 169, 2665 Palmqvist, 2017, Maghemite nanoparticles acts as nanozymes, improving growth and abiotic stress tolerance in Brassica napus, Nanoscale Res. Lett., 12, 631, 10.1186/s11671-017-2404-2 Pariona, 2017, Effects of hematite and ferrihydrite nanoparticles on germination and growth of maize seedlings, Saudi Journal of Biological Sciences, 24, 1547, 10.1016/j.sjbs.2016.06.004 Pariona, 2017, Effect of magnetite nanoparticles on the germination and early growth of Quercus macdougallii, Sci. Total Environ., 575, 869, 10.1016/j.scitotenv.2016.09.128 Peyrot, 2014, Effects of silver nanoparticles on soil enzyme activities with and without added organic matter, Environ. Toxicol. Chem., 33, 115, 10.1002/etc.2398 Pratelli, 2014, Regulation of amino acid metabolic enzymes and transporters in plants, J. Exp. Bot., 65, 5535, 10.1093/jxb/eru320 Pu, 2019, Does artificial light at night change the impact of silver nanoparticles on microbial decomposers and leaf litter decomposition in streams?, Environmental Science: Nano, 6, 1728 Rai, 2002, 45, 481 Rico, 2014, Cerium oxide nanoparticles impact yield and modify nutritional parameters in wheat (Triticum aestivum L.), J. Agric. Food Chem., 62, 9669, 10.1021/jf503526r Rizwan, 2017, Effect of metal and metal oxide nanoparticles on growth and physiology of globally important food crops: a critical review, J. Hazard. Mater., 322, 2, 10.1016/j.jhazmat.2016.05.061 Roberts, 2005 Rolland, 2002, Sugar sensing and signaling in plants, Plant Cell, 14, S185, 10.1105/tpc.010455 Sadat, 2014, Effect of spatial confinement on magnetic hyperthermia via dipolar interactions in Fe3O4 nanoparticles for biomedical applications, Mater. Sci. Eng. C, 42, 52, 10.1016/j.msec.2014.04.064 Servin, 2015, A review of the use of engineered nanomaterials to suppress plant disease and enhance crop yield, J. Nanopart. Res., 17, 10.1007/s11051-015-2907-7 Shahrekizada, 2015, EDTA-coated Fe3O4 nanoparticles: a novel biocompatible fertilizer for improving agronomic traits of sunflower (Helianthus annuus), Journal of Nanostructure, 5, 117 Singleton, 1965, Colorimetry of total phenolics with phosphomolybdic-phosphotungstic acid reagents, Am. J. Enol. Vitic., 16, 144, 10.5344/ajev.1965.16.3.144 Vittori Antisari, 2015, Uptake and translocation of metals and nutrients in tomato grown in soil polluted with metal oxide (CeO2, Fe3O4, SnO2, TiO2) or metallic (Ag, Co, Ni) engineered nanoparticles, Environ. Sci. Pollut. Res., 22, 1841, 10.1007/s11356-014-3509-0 Yaronskaya, 2006, 224, 700 Yazdani, 2016, Synthesis of functionalized magnetite nanoparticles to use as liver targeting MRI contrast agent, J. Magn. Magn. Mater., 406, 207, 10.1016/j.jmmm.2016.01.026 Yim, 1999, Effects of wastewater-borne heavy metals on mangrove plants and soil microbial activities, Mar. Pollut. Bull., 39, 179, 10.1016/S0025-326X(99)00067-3 Yin, 2018, Clarifying electron transfer and metagenomic analysis of microbial community in the methane production process with the addition of ferroferric oxide, Chem. Eng. J., 333, 216, 10.1016/j.cej.2017.09.160 Yuan, 2016, A novel recycling system for nano-magnetic molecular imprinting immobilised cellulases: synergistic recovery of anthocyanin from fruit and vegetable waste, Bioresour. Technol., 222, 14, 10.1016/j.biortech.2016.09.088 Zaragoza, 2009, Chapter 4 the capsule of the fungal pathogen Cryptococcus neoformans, 68, 133, 10.1016/S0065-2164(09)01204-0 Zhang, 2018, Metabolomics reveals how cucumber (Cucumis sativus) reprograms metabolites to cope with silver ions and silver nanoparticle-induced oxidative stress, Environ. Sci. Technol., 52, 8016, 10.1021/acs.est.8b02440 Zhang, 2019, Metabolomics reveals the “invisible” responses of spinach plants exposed to CeO2 nanoparticles, Environ Sci Technol, 53, 6007, 10.1021/acs.est.9b00593 Zhao, 2017, Response at genetic, metabolic, and physiological levels of maize (Zea mays) exposed to a Cu(OH)2 nanopesticide, ACS Sustain. Chem. Eng., 5, 8294, 10.1021/acssuschemeng.7b01968 Zhao, 2017, Metabolomics reveals Cu(OH)2 nanopesticide-activated anti-oxidative pathways and decreased beneficial antioxidants in spinach leaves, Environ Sci Technol, 51, 10184, 10.1021/acs.est.7b02163 Zhao, 2019, Metabolomics reveals that engineered nanomaterial exposure in soil alters both soil rhizosphere metabolite profiles and maize metabolic pathways, Environmental Science: Nano, 6, 1716