Exposure of cherry radish (Raphanus sativus L. var. Radculus Pers) to iron-based nanoparticles enhances its nutritional quality by trigging the essential elements

NanoImpact - Tập 25 - Trang 100388 - 2022
Noman Shakoor1, Muhammad Adeel2, Muhammad Zain3, Peng Zhang4, Muhammad Arslan Ahmad5, Tahir Farooq6, Pingfan Zhou1, Imran Azeem1, Muhammad Rizwan7, Kerui Guo1, Ghulam Jilani7, Sunny Ahmar8, Saliha Maqbool9, Xu Ming2, Yukui Rui1
1Beijing Key Laboratory of Farmland Soil Pollution Prevention and Remediation and College of Resources and Environmental Sciences, China Agricultural University, Beijing 100193, PR China
2BNU-HKUST Laboratory of Green Innovation, Advanced Institute of Natural Sciences, Beijing Normal University at Zhuhai, 18 Jinfeng Road, Tangjiawan, Zhuhai, Guangdong, China
3Key Laboratory of Crop Water Use and Regulation, Ministry of Agriculture and Rural Affairs, Farmland Irrigation Research Institute, Chinese Academy of Agricultural Sciences (CAAS), Xinxiang, Henan 453003, PR China
4School of Geography, Earth and Environmental Sciences, University of Birmingham, Edgbaston, B15 2TT Birmingham, UK
5College of Physics and Optoelectronic Engineering, Shenzhen University, Shenzhen 518060, China
6Plant Protection Research Institute and Guangdong Provincial Key Laboratory of High Technology for Plant Protection, Guangdong Academy of Agricultural Sciences, Guangzhou 510640, PR China
7Institute of Soil and Environmental Sciences, PMAS Arid Agriculture University, Rawalpindi 46300, Pakistan
8Institute of Crop Sciences, Chinese Academy of Agricultural Sciences (CAAS), Beijing 100081, China
9Department of soil, Water and Climate, University of Minnesota, 55108, USA

Tài liệu tham khảo

Adeel, 2019, Exposure to nickel oxide nanoparticles insinuates physiological, ultrastructural and oxidative damage: a life cycle study on Eisenia fetida, Environ. Pollut., 254, 113032, 10.1016/j.envpol.2019.113032 Ahmad, 2019, Appraisal of comparative therapeutic potential of undoped and nitrogen-doped titanium dioxide nanoparticles, Molecules, 24, 3916, 10.3390/molecules24213916 Ahmad, 2020, 9, 1552 Ahmad, 2021, Influence of calcium and magnesium elimination on plant biomass and secondary metabolites of Stevia rebaudiana Bertoni, Biotechnol. Appl. Biochem., 1, 1 Arro, 2019, Population structure and diversity estimates in a geographical core set of radish (Raphanus sativus) Bukva, 2019, Iron content in fruits, vegetables, herbs and spices samples marketed in Sarajevo, Bosnia and Herzegovina, Kemija u industriji: Časopis kemičara i kemijskih inženjera Hrvatske, 68, 281, 10.15255/KUI.2019.001 Elmer, 2018, 56, 111 Fakharzadeh, 2020, Using nanochelating technology for biofortification and yield increase in rice, Sci. Rep., 10, 1, 10.1038/s41598-020-60189-x Farooq, 2021, Nanotechnology and plant viruses: an emerging disease management approach for resistant pathogens, ACS Nano, 15, 6030, 10.1021/acsnano.0c10910 Gil-Diaz, 2020, Effectiveness of nanoscale zero-valent iron for the immobilization of Cu and/or Ni in water and soil samples, Sci. Rep., 10, 15927, 10.1038/s41598-020-73144-7 Hao, 2017, Carbon nanomaterials alter plant physiology and soil bacterial community composition in a rice-soil-bacterial ecosystem ☆, Environ. Pollut., 232 He, 2017, Facile synthesis of magnetic covalent organic framework with three-dimensional bouquet-like structure for enhanced extraction of organic targets, ACS Appl. Mater. Interfaces, 9, 2959, 10.1021/acsami.6b13643 Javed, 2021, Chapter Seven - Comparison of chemically and biologically synthesized nanoparticles for the production of secondary metabolites, and growth and development of plants, 303, 10.1016/bs.coac.2021.02.002 Jia, 2020, Application of melatonin-enhanced tolerance to high-temperature stress in cherry radish (Raphanus sativus L. var. radculus pers), J. Plant Growth Regul., 39, 631, 10.1007/s00344-019-10006-1 Kassebaum, 2014, A systematic analysis of global anemia burden from 1990 to 2010, Blood, 123, 615, 10.1182/blood-2013-06-508325 Kobayashi, 2012, Iron uptake, translocation, and regulation in higher plants, 131 Lei, 2016, Toxicity of iron-based nanoparticles to green algae: effects of particle size, crystal phase, oxidation state and environmental aging, Environ. Pollut., 218, 505, 10.1016/j.envpol.2016.07.030 Li, 2018, Interaction mechanisms between alpha-Fe2O3, gamma-Fe2O3 and Fe3O4 nanoparticles and Citrus maxima seedlings, Sci. Total Environ., 625, 677, 10.1016/j.scitotenv.2017.12.276 Li, 2021, Physiological impacts of zero valent iron, Fe3O4 and Fe2O3 nanoparticles in rice plants and their potential as Fe fertilizers, Environ. Pollut., 269, 10.1016/j.envpol.2020.116134 Liu, 2015, Potentials of engineered nanoparticles as fertilizers for increasing agronomic productions, Sci. Total Environ., 514, 131, 10.1016/j.scitotenv.2015.01.104 Liu, 2016, Effects of stabilized nanoparticles of copper, zinc, manganese, and iron oxides in low concentrations on lettuce (Lactuca sativa) seed germination: nanotoxicants or nanonutrients?, Water Air Soil Pollut., 227, 42, 10.1007/s11270-015-2738-2 Liu, 2021, A new strategy using nanoscale zero-valent iron to simultaneously promote remediation and safe crop production in contaminated soil, Nat. Nanotechnol., 16, 197, 10.1038/s41565-020-00803-1 Lopez, 2016, Iron deficiency anaemia, Lancet, 387, 907, 10.1016/S0140-6736(15)60865-0 Lowry, 2019, 14, 517 Ma, 2013, Phytotoxicity and uptake of nanoscale zero-valent iron (nZVI) by two plant species, Sci. Total Environ., 443, 844, 10.1016/j.scitotenv.2012.11.073 Ma, 2018, Uptake of engineered nanoparticles by food crops: characterization, mechanisms, and implications, Annu. Rev. Food Sci. Technol., 9, 129, 10.1146/annurev-food-030117-012657 Mahmoud, 2019, Effect of foliar ZnO and FeO nanoparticles application on growth and nutritional quality of red radish and assessment of their accumulation on human health, Agriculture, 65, 16 Organization, 1993 Oyen, 2004, Beta vulgaris L. Record from Protabase Paciolla, 2019, Vitamin C in plants: from functions to biofortification, Antioxidants (Basel), 8, 519, 10.3390/antiox8110519 Pang, 2021, Engineered nanomaterials suppress the soft rot disease (Rhizopus stolonifer) and slow down the loss of nutrient in sweet potato, Nanomaterials, 11, 2572, 10.3390/nano11102572 Przybysz, 2016, Vegetable sprouts enriched with iron: effects on yield, ROS generation and antioxidative system, Sci. Hortic., 203, 110, 10.1016/j.scienta.2016.03.017 Rico, 2011, Interaction of nanoparticles with edible plants and their possible implications in the food chain, J. Agric. Food Chem., 59, 3485, 10.1021/jf104517j Rui, 2016, Iron oxide nanoparticles as a potential iron fertilizer for peanut (Arachis hypogaea), Front. Plant Sci., 7 Rui, 2018, Metal oxide nanoparticles alter peanut (Arachis hypogaea L.) physiological response and reduce nutritional quality: a life cycle study, Environ. Sci. Nano, 5, 2088, 10.1039/C8EN00436F Saini, 2016, Food science and technology for management of iron deficiency in humans: a review, Trends Food Sci. Technol., 53, 13, 10.1016/j.tifs.2016.05.003 Servin, 2013, Synchrotron verification of TiO2 accumulation in cucumber fruit: a possible pathway of TiO2 nanoparticle transfer from soil into the food chain, Environ. Sci. Technol., 47, 11592, 10.1021/es403368j Sharma, 2009, The relationship between metal toxicity and cellular redox imbalance, Trends Plant Sci., 14, 43, 10.1016/j.tplants.2008.10.007 Shuai, 2010, Kinetics of ion-pair formation on variable-charge minerals using the frequency domain method, Soil Sci. Soc. Am. J., 74, 1568, 10.2136/sssaj2009.0161 Tanveer, 2019, Lithium in environment and potential targets to reduce lithium toxicity in plants, J. Plant Growth Regul., 38, 1574, 10.1007/s00344-019-09957-2 Tawfik, 2021, Iron oxide nanoparticles effect on growth, physiological traits and nutritional contents of Moringa oleifera grown in saline environment, Bull. Nat. Res. Centre, 45, 177, 10.1186/s42269-021-00624-9 Thakur, 2016, Plant-driven removal of heavy metals from soil: uptake, translocation, tolerance mechanism, challenges, and future perspectives, Environ. Monit. Assess., 188, 206, 10.1007/s10661-016-5211-9 Tiwari, 2016, Photodamage of iron-sulphur clusters in photosystem I induces non-photochemical energy dissipation, Nat. Plant, 2, 10.1038/nplants.2016.35 Ullah, 2020, Physiological and biochemical response of wheat (Triticum aestivum) to TiO2 nanoparticles in phosphorous amended soil: a full life cycle study, J. Environ. Manag., 263, 10.1016/j.jenvman.2020.110365 Wang, 2011, Physiological effects of magnetite (Fe3O4) nanoparticles on perennial ryegrass (Lolium perenne L.) and pumpkin (Cucurbita mixta) plants, Nanotoxicology, 5, 30, 10.3109/17435390.2010.489206 Wang, 2019, Effect of metal oxide nanoparticles on amino acids in wheat grains (Triticum aestivum) in a life cycle study, J. Environ. Manag., 241, 319, 10.1016/j.jenvman.2019.04.041 Wang, 2019, The impacts of gamma-Fe2O3 and Fe3O4 nanoparticles on the physiology and fruit quality of muskmelon (Cucumis melo) plants, Environ. Pollut., 249, 1011, 10.1016/j.envpol.2019.03.119 Yang, 2018, Alteration of crop yield and quality of wheat upon exposure to silver nanoparticles in a life cycle study, J. Agric. Food Chem., 66 Yoon, 2019, Effects of zerovalent iron nanoparticles on photosynthesis and biochemical adaptation of soil-grown Arabidopsis thaliana, Nanomaterials (Basel), 9 Yuan, 2018, New insights into the cellular responses to iron nanoparticles in Capsicum annuum, Sci. Rep., 8 Zahra, 2017, Growth and metabolic responses of rice (Oryza sativa L.) cultivated in phosphorus-deficient soil amended with TiO2 nanoparticles, J. Agric. Food Chem., 65, 5598, 10.1021/acs.jafc.7b01843 Zhang, 2016, Effects of aging on the fate and bioavailability of cerium oxide nanoparticles to radish (Raphanus sativus L.) in soil, ACS Sustain. Chem. Eng., 4, 5424, 10.1021/acssuschemeng.6b00724 Zhang, 2016, In vitro anti-inflammatory and antioxidant activities and protein quality of high hydrostatic pressure treated squids (Todarodes pacificus), Food Chem., 203, 258, 10.1016/j.foodchem.2016.02.072 Zhao, 2017, (1)H NMR and GC-MS based metabolomics reveal nano-cu altered cucumber (Cucumis sativus) fruit nutritional supply, Plant Physiol. Biochem., 110, 138, 10.1016/j.plaphy.2016.02.010 Zhou, 2017, Iron regulatory protein (IRP)-iron responsive element (IRE) signaling pathway in human neurodegenerative diseases, Mol. Neurodegener., 12, 1, 10.1186/s13024-017-0218-4 Zia-ur-Rehman, 2018, Responses of plants to iron oxide nanoparticles, 221 Afifi, 2019, Data visualization Ishfaq, 2021, Severity of zinc and iron malnutrition linked to low intake through a staple crop: a case study in east-central Pakistan, Environmental Geochemistry and Health, 43, 4219, 10.1007/s10653-021-00912-3