Role of green synthesized nano iron oxide in alleviating the cadmium toxicity in Brassica oleracea var. italica seedlings
暂无分享,去创建一个
[1] T. Tseng,et al. Green synthesis of spermine coated iron nanoparticles and its effect on biochemical properties of Rosmarinus officinalis , 2023, Scientific Reports.
[2] Mohd Kashif Aziz,et al. The biosynthesis of nickel oxide nanoparticles using watermelon rind extract and their biophysical effects on the germination of Vigna radiata seeds at various concentrations , 2022, International Journal of Science and Research Archive.
[3] Ashutosh Kumar Singh,et al. Impact of Foliar Application of ZnO and Fe3O4 Nanoparticles on Seed Yield and Physio-Biochemical Parameters of Cucumber (Cucumis sativus L.) Seed under Open Field and Protected Environment vis a vis during Seed Germination , 2022, Plants.
[4] Mohd. Saghir Khan,et al. Phyto-interactive impact of green synthesized iron oxide nanoparticles and Rhizobium pusense on morpho-physiological and yield components of greengram. , 2022, Plant physiology and biochemistry : PPB.
[5] N. Amist,et al. A review summarizing uptake, translocation and accumulation of nanoparticles within the plants: current status and future prospectus , 2022, Journal of Plant Biochemistry and Biotechnology.
[6] N. Amist,et al. Green synthesis of zinc oxide nanoparticles using Vernonia cinerea leaf extract and evaluation as nano-nutrient on the growth and development of tomato seedling , 2022, Plant Nano Biology.
[7] N. Amist,et al. Potential role of biosynthesized zinc oxide nanoparticles in counteracting lead toxicity in Solanum lycopersicum L. , 2022, Plant Nano Biology.
[8] A. A. Ivanov,et al. Effects of Iron Oxide Nanoparticles (Fe3O4) on Growth, Photosynthesis, Antioxidant Activity and Distribution of Mineral Elements in Wheat (Triticum aestivum) Plants , 2022, Plants.
[9] E. Soltani,et al. Contribution of Exogenous Proline to Abiotic Stresses Tolerance in Plants: A Review , 2022, International journal of molecular sciences.
[10] Henry Fenekansi Kiwumulo,et al. Green synthesis and characterization of iron-oxide nanoparticles using Moringa oleifera: a potential protocol for use in low and middle income countries , 2022, BMC research notes.
[11] S. Sahi,et al. Application of zinc oxide nanoparticles as fertilizer boosts growth in rice plant and alleviates chromium stress by regulating genes involved in regulating oxidative stress. , 2022, Chemosphere.
[12] Hafiz M.N. Iqbal,et al. Nano-remediation technologies for the sustainable mitigation of persistent organic pollutants. , 2022, Environmental research.
[13] Deepa Mundekkad,et al. Analysis of structural and biomimetic characteristics of the green-synthesized Fe3O4 nanozyme from the fruit peel extract of Punica granatum , 2022, Chemical Papers.
[14] P. Zhang,et al. Exposure of cherry radish (Raphanus sativus L. var. Radculus Pers) to iron-based nanoparticles enhances its nutritional quality by trigging the essential elements. , 2022, NanoImpact.
[15] P. Ahmad,et al. Newly-synthesized iron-oxide nanoparticles showed synergetic effect with citric acid for alleviating arsenic phytotoxicity in soybean. , 2021, Environmental pollution.
[16] X. Cao,et al. Proline, a multifaceted signalling molecule in plant responses to abiotic stress: understanding the physiological mechanisms. , 2021, Plant biology.
[17] J. Simal-Gándara,et al. Phytoremediation of Toxic Metals: A Sustainable Green Solution for Clean Environment , 2021, Applied Sciences.
[18] K. Acharya,et al. Green synthesis of iron oxide nanoparticles and their ameliorative effect on arsenic stress relief in Oryza sativa seedlings , 2021, Biocatalysis and Agricultural Biotechnology.
[19] M. Tawfik,et al. Iron oxide nanoparticles effect on growth, physiological traits and nutritional contents of Moringa oleifera grown in saline environment , 2021, Bulletin of the National Research Centre.
[20] Raviraj M. Kulkarni,et al. Analysis of herbicide and its applications through a sensitive electrochemical technique based on MWCNTs/ZnO/CPE fabricated sensor. , 2021, Chemosphere.
[21] A. Baykal,et al. Fate and impact of maghemite (γ-Fe2O3) and magnetite (Fe3O4) nanoparticles in barley (Hordeum vulgare L.) , 2021, Environmental Science and Pollution Research.
[22] Ajey Singh,et al. Role of Bio-Based Synthesized Nanozinc Oxide in Ameliorating the Deleterious Effects Caused by Lead in Vigna radiata L , 2021, Applied Biochemistry and Biotechnology.
[23] Liyun Liu,et al. Iron Deficiency Leads to Chlorosis Through Impacting Chlorophyll Synthesis and Nitrogen Metabolism in Areca catechu L. , 2021, Frontiers in Plant Science.
[24] P. Mandal,et al. Application of Iron Oxide Nanoparticles as Micronutrient Fertilizer in Mulberry Propagation , 2021, Journal of Plant Growth Regulation.
[25] Anuj Kumar,et al. Impact of metal oxide nanoparticles on cotton (Gossypium hirsutum L.): a physiological perspective , 2021 .
[26] C. M. Ayyub,et al. Role of Proline in Mitigating the Deleterious Effects of Heat Stress in Chillies , 2021, Contemporary Agriculture.
[27] R. Singh,et al. Impact of Cadmium Pollution on Food Safety and Human Health , 2021 .
[28] Yosoof Niknejad,et al. Iron oxide nanoparticles alleviate arsenic phytotoxicity in rice by improving iron uptake, oxidative stress tolerance and diminishing arsenic accumulation. , 2021, Plant physiology and biochemistry : PPB.
[29] Shweta,et al. Nanotechnology: A cutting-edge technology in vegetable production , 2021, The Journal of Horticultural Science and Biotechnology.
[30] F. Coulon,et al. Nanoremediation technologies for sustainable remediation of contaminated environments: Recent advances and challenges. , 2021, Chemosphere.
[31] M. Fujita,et al. Abiotic Stress and Reactive Oxygen Species: Generation, Signaling, and Defense Mechanisms , 2021, Antioxidants.
[32] M. Mady,et al. Nano iron fertilization significantly increases tomato yield by increasing plants’ vegetable growth and photosynthetic efficiency , 2021 .
[33] M. Noman,et al. Nanoparticle-based amelioration of drought stress and cadmium toxicity in rice via triggering the stress responsive genetic mechanisms and nutrient acquisition. , 2020, Ecotoxicology and environmental safety.
[34] S. Flores,et al. Biogenic synthesis of iron oxide nanoparticles using Moringa oleifera and chitosan and its evaluation on corn germination , 2020, Environmental Nanotechnology, Monitoring & Management.
[35] I. Vass,et al. Proline is a quencher of singlet oxygen and superoxide both in in vitro systems and isolated thylakoids. , 2020, Physiologia plantarum.
[36] Aqueous Chemical Co-Precipitation of Iron Oxide Magnetic Nanoparticles for Use in Agricultural Technologies , 2020, Letters in Applied NanoBioScience.
[37] S. G. Hassan,et al. Physiological and anti-oxidative response of biologically and chemically synthesized iron oxide: Zea mays a case study , 2020, Heliyon.
[38] A. Shah,et al. Butanolide alleviated cadmium stress by improving plant growth, photosynthetic parameters and antioxidant defense system of brassica oleracea. , 2020, Chemosphere.
[39] M. Noman,et al. Biogenic copper nanoparticles synthesized by using a copper-resistant strain Shigella flexneri SNT22 reduced the translocation of cadmium from soil to wheat plants. , 2020, Journal of hazardous materials.
[40] Hanzhi Zhang,et al. Effects of iron oxide nanoparticles on Fe and heavy metal accumulation in castor (Ricinus communis L.) plants and the soil aggregate. , 2020, Ecotoxicology and environmental safety.
[41] Arash Karimipour,et al. The Effect of Nanoparticle Shape and Microchannel Geometry on Fluid Flow and Heat Transfer in a Porous Microchannel , 2020, Symmetry.
[42] D. Astruc,et al. Nanocatalysts and other nanomaterials for water remediation from organic pollutants , 2020 .
[43] A. Baykal,et al. Size effect of iron (III) oxide nanomaterials on the growth, and their uptake and translocation in common wheat (Triticum aestivum L.). , 2020, Ecotoxicology and environmental safety.
[44] Changyun Liu,et al. Foliar exposure of Fe3O4 nanoparticles on Nicotiana benthamiana: Evidence for nanoparticles uptake, plant growth promoter and defense response elicitor against plant virus. , 2020, Journal of hazardous materials.
[45] A. Ingle,et al. The emerging role of metallic nanoparticles in food , 2020, Applied Microbiology and Biotechnology.
[46] G. Marrazza,et al. Nanovehicles for Plant Modifications towards Pest- and Disease-Resistance Traits. , 2019, Trends in plant science.
[47] Jae-hwan Kim,et al. Effects of Zerovalent Iron Nanoparticles on Photosynthesis and Biochemical Adaptation of Soil-Grown Arabidopsis thaliana , 2019, Nanomaterials.
[48] Qing Chen,et al. Effects of cerium oxide on rice seedlings as affected by co-exposure of cadmium and salt. , 2019, Environmental pollution.
[49] N. Abdo,et al. Physio-biochemical and ultrastructural impact of (Fe3O4) nanoparticles on tobacco , 2019, BMC Plant Biology.
[50] M. Javed,et al. The accumulation of cadmium in wheat (Triticum aestivum) as influenced by zinc oxide nanoparticles and soil moisture conditions , 2019, Environmental Science and Pollution Research.
[51] M. Rizwan,et al. Influence of biochar amendment and foliar application of iron oxide nanoparticles on growth, photosynthesis, and cadmium accumulation in rice biomass , 2019, Journal of Soils and Sediments.
[52] K. Juang,et al. Cadmium in rice grains from a field trial in relation to model parameters of Cd-toxicity and -absorption in rice seedlings. , 2019, Ecotoxicology and environmental safety.
[53] B. Patil,et al. Seed Priming with Iron Oxide Nanoparticles Modulate Antioxidant Potential and Defense-Linked Hormones in Watermelon Seedlings , 2019, ACS Sustainable Chemistry & Engineering.
[54] R. Jamei,et al. Response of tomato plants to interaction effects of magnetic (Fe3O4) nanoparticles and cadmium stress , 2019, Journal of Plant Interactions.
[55] P. Prasad,et al. Seed treatment with nano‐iron (III) oxide enhances germination, seeding growth and salinity tolerance of sorghum , 2018 .
[56] A. Sharafi,et al. Influence of nano‐zinc oxide on tropane alkaloid production, h6h gene transcription and antioxidant enzyme activity in Hyoscyamus reticulatus L. hairy roots , 2018, Engineering in life sciences.
[57] A. S. Raghavendra,et al. Oxidative stress induced in chloroplasts or mitochondria promotes proline accumulation in leaves of pea (Pisum sativum): another example of chloroplast-mitochondria interactions , 2018, Protoplasma.
[58] Lina Lin,et al. Reduction of arsenic toxicity in two rice cultivar seedlings by different nanoparticles. , 2018, Ecotoxicology and environmental safety.
[59] G. Murtaza,et al. Effect of biochar on alleviation of cadmium toxicity in wheat (Triticum aestivum L.) grown on Cd-contaminated saline soil , 2018, Environmental Science and Pollution Research.
[60] D. Xi,et al. Phytochrome A and B Negatively Regulate Salt Stress Tolerance of Nicotiana tobacum via ABA–Jasmonic Acid Synergistic Cross-Talk , 2018, Plant & cell physiology.
[61] M. Khatamian,et al. Nano iron (Fe) complex is an effective source of Fe for tobacco plants grown under low Fe supply , 2018 .
[62] M. Rizwan,et al. Effect of foliar-applied iron complexed with lysine on growth and cadmium (Cd) uptake in rice under Cd stress , 2018, Environmental Science and Pollution Research.
[63] D. R. Hoagland,et al. The Water-Culture Method for Growing Plants Without Soil , 2018 .
[64] Yu Chen,et al. New insights into the cellular responses to iron nanoparticles in Capsicum annuum , 2018, Scientific Reports.
[65] M. Prasad,et al. A green synthetic route to phenolics fabricated magnetite nanoparticles from coconut husk extract: Implications to treat metal contaminated water and heavy metal stress in Oryza sativa L. , 2018 .
[66] M. Rizwan,et al. Biochar application increased the growth and yield and reduced cadmium in drought stressed wheat grown in an aged contaminated soil. , 2018, Ecotoxicology and environmental safety.
[67] M. A. Shah,et al. Preparation, characterization and antifungal activity of iron oxide nanoparticles. , 2018, Microbial pathogenesis.
[68] S. K. Chaudhuri,et al. Biosynthesis of zinc oxide nanoparticles using leaf extract of Calotropis gigantea: characterization and its evaluation on tree seedling growth in nursery stage , 2017, Applied Nanoscience.
[69] V. Bahadur,et al. Effect of Different Concentrations of Iron Oxide and Zinc Oxide Nanoparticles on Growth and Yield of Strawberry (Fragaria x ananassa Duch) cv. Chandler , 2017 .
[70] S. Maensiri,et al. Nanopriming technology for enhancing germination and starch metabolism of aged rice seeds using phytosynthesized silver nanoparticles , 2017, Scientific Reports.
[71] Khalid Saeed,et al. Nanoparticles: Properties, applications and toxicities , 2017, Arabian Journal of Chemistry.
[72] X. He,et al. Magnetic (Fe3O4) Nanoparticles Reduce Heavy Metals Uptake and Mitigate Their Toxicity in Wheat Seedling , 2017 .
[73] M. Prasad,et al. Carbon-Bound Iron Oxide Nanoparticles Prevent Calcium-Induced Iron Deficiency in Oryza sativa L. . , 2017, Journal of agricultural and food chemistry.
[74] Xingmao Ma,et al. The impact of cerium oxide nanoparticles on the salt stress responses of Brassica napus L. , 2016, Environmental pollution.
[75] Mengmeng Rui,et al. Iron Oxide Nanoparticles as a Potential Iron Fertilizer for Peanut (Arachis hypogaea) , 2016, Front. Plant Sci..
[76] K. Shameli,et al. Green Synthesis of Magnetite (Fe3O4) Nanoparticles Using Seaweed (Kappaphycus alvarezii) Extract , 2016, Nanoscale Research Letters.
[77] Hans‐Jörg Mai,et al. From the proteomic point of view: Integration of adaptive changes to iron deficiency in plants , 2016 .
[78] Muhammad Rizwan,et al. Cadmium stress in rice: toxic effects, tolerance mechanisms, and management: a critical review , 2016, Environmental Science and Pollution Research.
[79] Yaolin Xu,et al. Developmental and Reproductive Effects of Iron Oxide Nanoparticles in Arabidopsis thaliana , 2015, International journal of molecular sciences.
[80] P. Bhandari,et al. Cadmium toxicity in crop plants and its alleviation by arbuscular mycorrhizal (AM) fungi: An overview , 2014 .
[81] Yun-qiang Wang,et al. Physiological effects of magnetic iron oxide nanoparticles towards watermelon. , 2013, Journal of nanoscience and nanotechnology.
[82] E. Yanful,et al. Arsenic removal from aqueous solutions by mixed magnetite–maghemite nanoparticles , 2011 .
[83] M. Kirschbaum,et al. Does Enhanced Photosynthesis Enhance Growth? Lessons Learned from CO2 Enrichment Studies[W] , 2010, Plant Physiology.
[84] H. Hartikainen,et al. Protective effect of selenium in Broccoli (Brassica oleracea) plants subjected to cadmium exposure. , 2008, Journal of agricultural and food chemistry.
[85] Stanley Lutts,et al. NaCl-induced senescence in leaves of rice (Oryza sativa L) cultivars differing in salinity resistance , 1996 .
[86] I. Fridovich,et al. Assaying for superoxide dismutase activity: some large consequences of minor changes in conditions. , 1987, Analytical biochemistry.
[87] I. D. Teare,et al. Rapid determination of free proline for water-stress studies , 1973, Plant and Soil.
[88] E. Jaworski. Nitrate reductase assay in intact plant tissues. , 1971, Biochemical and biophysical research communications.
[89] L. Packer,et al. Photoperoxidation in isolated chloroplasts. I. Kinetics and stoichiometry of fatty acid peroxidation. , 1968, Archives of biochemistry and biophysics.
[90] Oliver H. Lowry,et al. Protein measurement with the Folin phenol reagent. , 1951, The Journal of biological chemistry.
[91] OUP accepted manuscript , 2022, Journal Of Experimental Botany.
[92] Sujit Roy,et al. The Hows and Whys of Heavy Metal-Mediated Phytotoxicity: An Insight , 2020 .
[93] A. Hussain,et al. Zinc and iron oxide nanoparticles improved the plant growth and reduced the oxidative stress and cadmium concentration in wheat. , 2019, Chemosphere.
[94] Muhammad Habib ur Rahman,et al. Rice Responses and Tolerance to Metal/Metalloid Toxicity , 2019, Advances in Rice Research for Abiotic Stress Tolerance.
[95] K. V. Rao,et al. BIOGENIC SYNTHESIZED Fe3O4 NANOPARTICLES AFFECT ON GROWTH PARAMETER OF MAIZE (ZEA MAYS L.) , 2018 .
[96] M. Sedghi,et al. The Effect of Ferrous Nano-oxide Particles on Physiological Traits and Nutritional Compounds of Soybean ( Glycine max L.) Seed. , 2018, Anais da Academia Brasileira de Ciencias.
[97] P. White,et al. Root responses to cadmium in the rhizosphere: a review. , 2011, Journal of experimental botany.
[98] H. Lichtenthaler. CHLOROPHYLL AND CAROTENOIDS: PIGMENTS OF PHOTOSYNTHETIC BIOMEMBRANES , 1987 .
[99] H. Aebi,et al. Catalase in vitro. , 1984, Methods in enzymology.