Emergence of toxic trace elements in plant environments: Insights into potential of silica nanoparticles for mitigation of metal toxicity in plants.
暂无分享,去创建一个
[1] P. Liu,et al. The mechanism of silicon on alleviating cadmium toxicity in plants: A review , 2023, Frontiers in Plant Science.
[2] Hefa Cheng,et al. Role of phytohormones in heavy metal tolerance in plants: A review , 2023, Ecological Indicators.
[3] S. Ercişli,et al. Nanoparticles: The Plant Saviour under Abiotic Stresses , 2022, Nanomaterials.
[4] Muhammad Riaz,et al. Effect of nano-silicon on the regulation of ascorbate-glutathione contents, antioxidant defense system and growth of copper stressed wheat (Triticum aestivum L.) seedlings , 2022, Frontiers in Plant Science.
[5] J. Beukes,et al. Contamination of useful plant leaves with chromium and other potentially toxic elements and associated health risks in a polluted mining-smelting region of South Africa , 2022, Environmental Advances.
[6] G. Cadenas-Pliego,et al. Effect of Silicon Nanoparticles on Tomato Plants Exposed to Two Forms of Inorganic Arsenic , 2022, Agronomy.
[7] Swati Sharma,et al. Biogenic silica nanoparticles from agro-waste: Properties, mechanism of extraction and applications in environmental sustainability , 2022, Journal of Environmental Chemical Engineering.
[8] M. A. Khan,et al. Silicon nanoparticles in higher plants: Uptake, action, stress tolerance, and crosstalk with phytohormones, antioxidants, and other signalling molecules. , 2022, Environmental pollution.
[9] Lei Wang,et al. Role of Silica Nanoparticles in Abiotic and Biotic Stress Tolerance in Plants: A Review , 2022, International journal of molecular sciences.
[10] C. Varotto,et al. Metal Detoxification in Land Plants: From Bryophytes to Vascular Plants. STATE of the Art and Opportunities , 2022, Plants.
[11] G. Cadenas-Pliego,et al. Silicon Nanoparticles Improve the Shelf Life and Antioxidant Status of Lilium , 2021, Plants.
[12] M. Rizwan,et al. Foliar application of silica sol alleviates boron toxicity in rice (Oryza sativa) seedlings. , 2021, Journal of hazardous materials.
[13] Rania S. M. Eid,et al. Biological silicon nanoparticles improve Phaseolus vulgaris L. yield and minimize its contaminant contents on a heavy metals-contaminated saline soil. , 2021, Journal of environmental sciences.
[14] P. Wycisk,et al. Potentially toxic elements in soil and road dust around Sonbhadra industrial region, Uttar Pradesh, India: Source apportionment and health risk assessment. , 2021, Environmental research.
[15] M. Rizwan,et al. Effects of silicon on heavy metal uptake at the soil-plant interphase: A review. , 2021, Ecotoxicology and environmental safety.
[16] D. Podar,et al. The role of roots and rhizosphere in providing tolerance to toxic metals and metalloids. , 2021, Plant, cell & environment.
[17] A. Hussain,et al. Effects of nanoparticles on trace element uptake and toxicity in plants: A review. , 2021, Ecotoxicology and environmental safety.
[18] A. Patra,et al. Silicon Potential to Mitigate Plant Heavy Metals Stress for Sustainable Agriculture: a Review , 2021, Silicon.
[19] R. Deshmukh,et al. Silicon nanoparticles (SiNPs) in sustainable agriculture: major emphasis on the practicality, efficacy and concerns , 2021, Nanoscale advances.
[20] Marzieh Babashpour-Asl,et al. Foliar-applied silicon nanoparticles mitigate cadmium stress through physio-chemical changes to improve growth, antioxidant capacity, and essential oil profile of summer savory (Satureja hortensis L.). , 2021, Plant physiology and biochemistry : PPB.
[21] M. Ashraf,et al. Alleviatory effects of Silicon on the morphology, physiology, and antioxidative mechanisms of wheat (Triticum aestivum L.) roots under cadmium stress in acidic nutrient solutions , 2021, Scientific reports.
[22] Chunli Xu,et al. Size Effect of Mesoporous Silica Nanoparticles on Pesticide Loading, Release, and Delivery in Cucumber Plants , 2021, Applied Sciences.
[23] R. Deshmukh,et al. Silicon crosstalk with reactive oxygen species, phytohormones and other signaling molecules. , 2020, Journal of hazardous materials.
[24] Ju-Pei Shen,et al. Foliar Application of SiO2 Nanoparticles Alters Soil Metabolite Profiles and Microbial Community Composition in the Pakchoi (Brassica chinensis L.) Rhizosphere Grown in Contaminated Mine Soil. , 2020, Environmental science & technology.
[25] M. Rizwan,et al. Foliar application of silicon nanoparticles affected the growth, vitamin C, flavonoid, and antioxidant enzyme activities of coriander (Coriandrum sativum L.) plants grown in lead (Pb)-spiked soil , 2020, Environmental Science and Pollution Research.
[26] G. Cadenas-Pliego,et al. Form of Silica Improves Yield, Fruit Quality and Antioxidant Defense System of Tomato Plants under Salt Stress , 2020, Agriculture.
[27] Laigui Yu,et al. Mercapto propyltrimethoxysilane- and ferrous sulfate-modified nano-silica for immobilization of lead and cadmium as well as arsenic in heavy metal-contaminated soil. , 2020, Environmental pollution.
[28] J. Nzeve,et al. Selected trace elements evaluation in soil from an urban farming area , 2020 .
[29] Lirong Zheng,et al. Silica nanoparticles alleviate mercury toxicity via immobilization and inactivation of Hg(ii) in soybean (Glycine max) , 2020 .
[30] S. Tan,et al. Phytoremediation: A Promising Approach for Revegetation of Heavy Metal-Polluted Land , 2020, Frontiers in Plant Science.
[31] Qian Jin,et al. Silica nanoparticles inhibit arsenic uptake into rice suspension cellsviaimproving pectin synthesis and the mechanical force of the cell wall , 2020, Environmental Science: Nano.
[32] Xiaoe Yang,et al. Foliage application of selenium and silicon nanoparticles alleviates Cd and Pb toxicity in rice (Oryza sativa L.). , 2020, The Science of the total environment.
[33] Chaosheng Zhang,et al. Effect of Surface-modified Nano-silica on the Mobility and Fraction of Cd in Contaminated Agricultural Soils , 2020, Soil and Sediment Contamination: An International Journal.
[34] H. AbdElgawad,et al. Silicon dioxide nanoparticles ameliorate the phytotoxic hazards of aluminum in maize grown on acidic soil. , 2019, The Science of the total environment.
[35] G. Cadenas-Pliego,et al. Impact of Silicon Nanoparticles on the Antioxidant Compounds of Tomato Fruits Stressed by Arsenic , 2019, Foods.
[36] Yulong Ding,et al. Silicon dioxide nanoparticles improve plant growth by enhancing antioxidant enzyme capacity in bamboo (Pleioblastus pygmaeus) under lead toxicity , 2019, Trees.
[37] Daniel C W Tsang,et al. Soil amendments for immobilization of potentially toxic elements in contaminated soils: A critical review. , 2019, Environment international.
[38] M. Rizwan,et al. Effect of gibberellic acid on growth, photosynthesis and antioxidant defense system of wheat under zinc oxide nanoparticle stress. , 2019, Environmental pollution.
[39] M. Rizwan,et al. Chemically synthesized silver nanoparticles induced physio-chemical and chloroplast ultrastructural changes in broad bean seedlings. , 2019, Chemosphere.
[40] Xiaohong Li,et al. Highly effective immobilization of Pb and Cd in severely contaminated soils by environment-compatible, mercapto-functionalized reactive nanosilica , 2019, Journal of Cleaner Production.
[41] Y. Ok,et al. Heavy metal-induced oxidative stress on seed germination and seedling development: a critical review , 2019, Environmental Geochemistry and Health.
[42] Lingqing Wang,et al. Effects of spraying nano-materials on the absorption of metal(loid)s in cucumber. , 2019, IET nanobiotechnology.
[43] P. Ahmad,et al. Silicon nanoparticles enhanced the growth and reduced the cadmium accumulation in grains of wheat (Triticum aestivum L.). , 2019, Plant physiology and biochemistry : PPB.
[44] E. Muszyńska,et al. Dual Role of Metallic Trace Elements in Stress Biology—From Negative to Beneficial Impact on Plants , 2019, International journal of molecular sciences.
[45] N. Bolan,et al. A critical prospective analysis of the potential toxicity of trace element regulation limits in soils worldwide: Are they protective concerning health risk assessment? - A review. , 2019, Environment international.
[46] E. Muszyńska,et al. Evaluation of heavy metal-induced responses in Silene vulgaris ecotypes , 2019, Protoplasma.
[47] S. Shaheen,et al. Health risk assessment of potentially toxic elements in soils along the Central Elbe River, Germany. , 2019, Environment international.
[48] Xuan Xu,et al. Reactive oxygen species and heavy metal stress in plants: Impact on the cell wall and secondary metabolism , 2019, Environmental and Experimental Botany.
[49] D. Lowry,et al. A Molecular View of Plant Local Adaptation: Incorporating Stress-Response Networks. , 2019, Annual review of plant biology.
[50] R. Deshmukh,et al. Role of Silicon in Mitigation of Heavy Metal Stresses in Crop Plants , 2019, Plants.
[51] A. Hussain,et al. Alleviation of cadmium accumulation in maize (Zea mays L.) by foliar spray of zinc oxide nanoparticles and biochar to contaminated soil. , 2019, Environmental pollution.
[52] Yunpeng Cao,et al. Evolutionary and functional analysis of the plant-specific NADPH oxidase gene family in Brassica rapa L. , 2019, Royal Society Open Science.
[53] P. Sharma,et al. Chromium and cadmium removal from wastewater using duckweed - Lemna gibba L. and ultrastructural deformation due to metal toxicity , 2019, International journal of phytoremediation.
[54] A. Hussain,et al. Seed priming with silicon nanoparticles improved the biomass and yield while reduced the oxidative stress and cadmium concentration in wheat grains , 2019, Environmental Science and Pollution Research.
[55] Lei Huang,et al. A review of soil heavy metal pollution from industrial and agricultural regions in China: Pollution and risk assessment. , 2018, The Science of the total environment.
[56] S. Dumez,et al. The role of epicuticular waxes on foliar metal transfer and phytotoxicity in edible vegetables: case of Brassica oleracea species exposed to manufactured particles , 2018, Environmental Science and Pollution Research.
[57] Shaoshan Li,et al. Airborne foliar transfer of particular metals in Lactuca sativa L.: translocation, phytotoxicity, and bioaccessibility , 2018, Environmental Science and Pollution Research.
[58] Li Yang,et al. Chelant-Induced Phytoextraction of Heavy Metals from Contaminated Soils: A Review , 2018, Polish Journal of Environmental Studies.
[59] M. Wang,et al. Excess iron stress reduces root tip zone growth through nitric oxide-mediated repression of potassium homeostasis in Arabidopsis. , 2018, The New phytologist.
[60] Yan Li,et al. Source Identification and Apportionment of Trace Elements in Soils in the Yangtze River Delta, China , 2018, International journal of environmental research and public health.
[61] F. Najafi,et al. Effects of silicon nanoparticles on molecular, chemical, structural and ultrastructural characteristics of oat (Avena sativa L.). , 2018, Plant physiology and biochemistry : PPB.
[62] E. Muszyńska,et al. The acclimatization strategies of kidney vetch (Anthyllis vulneraria L.) to Pb toxicity , 2018, Environmental Science and Pollution Research.
[63] J. Vangronsveld,et al. Effects of Different Metals on Photosynthesis: Cadmium and Zinc Affect Chlorophyll Fluorescence in Durum Wheat , 2018, International journal of molecular sciences.
[64] J. Wang,et al. Partitioning and geochemical fractions of heavy metals from geogenic and anthropogenic sources in various soil particle size fractions , 2018 .
[65] S. Khalid,et al. A comparison of technologies for remediation of heavy metal contaminated soils , 2017 .
[66] M. Ghorbanpour,et al. Physiological and antioxidative responses of medicinal plants exposed to heavy metals stress , 2017 .
[67] Fangbai Li,et al. Silica nanoparticles alleviate cadmium toxicity in rice cells: Mechanisms and size effects. , 2017, Environmental pollution.
[68] P. Biswas,et al. Nanofertilizer for Precision and Sustainable Agriculture: Current State and Future Perspectives. , 2017, Journal of agricultural and food chemistry.
[69] Yul-Kyun Ahn,et al. Silicon Regulates Potential Genes Involved in Major Physiological Processes in Plants to Combat Stress , 2017, Front. Plant Sci..
[70] I. Caçador,et al. Photochemical features and trace element substituted chlorophylls as early detection biomarkers of metal exposure in the model diatom Phaeodactylum tricornutum , 2017, Ecological Indicators.
[71] M. Prasad,et al. Trace elements in the soil-plant interface: Phytoavailability, translocation, and phytoremediation–A review , 2017 .
[72] E. Kwon,et al. Arsenic, chromium, molybdenum, and selenium: Geochemical fractions and potential mobilization in riverine soil profiles originating from Germany and Egypt. , 2017, Chemosphere.
[73] Jiehua Wang,et al. Dose-dependent sensitivity of Arabidopsis thaliana seedling root to copper is regulated by auxin homeostasis , 2017 .
[74] M. Greger,et al. Comparison of silicon nanoparticles and silicate treatments in fenugreek. , 2017, Plant physiology and biochemistry : PPB.
[75] S. Díez,et al. Assessment of heavy metal pollution, spatial distribution and origin in agricultural soils along the Sinú River Basin, Colombia , 2017, Environmental research.
[76] S. Lutts,et al. Silicon and Plants: Current Knowledge and Technological Perspectives , 2017, Front. Plant Sci..
[77] Muhammad Ibrahim,et al. Effect of metal and metal oxide nanoparticles on growth and physiology of globally important food crops: A critical review. , 2017, Journal of hazardous materials.
[78] R. D. de Jesus,et al. Morphophysiological, ultrastructural, and nutritional changes induced by Cu toxicity in young Erythrina fusca plants , 2017, International journal of phytoremediation.
[79] Tianxin Li,et al. Effects of Heavy Metals from Soil and Dust Source on DNA Damage of the Leymus chinensis Leaves in Coal-Mining Area in Northwest China , 2016, PloS one.
[80] S. Mehmood,et al. Silicon occurrence, uptake, transport and mechanisms of heavy metals, minerals and salinity enhanced tolerance in plants with future prospects: A review. , 2016, Journal of environmental management.
[81] L. Cang,et al. Effects of root morphology and leaf transpiration on Cd uptake and translocation in rice under different growth temperature , 2016, Environmental Science and Pollution Research.
[82] Xueying Fan,et al. Effects of silicon on morphology, ultrastructure and exudates of rice root under heavy metal stress , 2016, Acta Physiologiae Plantarum.
[83] D. Chauhan,et al. Silicon Nanoparticles More Efficiently Alleviate Arsenate Toxicity than Silicon in Maize Cultiver and Hybrid Differing in Arsenate Tolerance , 2016, Front. Environ. Sci..
[84] P. Bhattacharya,et al. Nutritional Aspects of Essential Trace Elements in Oral Health and Disease: An Extensive Review , 2016, Scientifica.
[85] J. Abadía,et al. Effects of individual and combined metal foliar fertilisers on iron- and manganese-deficient Solanum lycopersicum plants , 2016, Plant and Soil.
[86] Samiksha Singh,et al. Heavy Metal Tolerance in Plants: Role of Transcriptomics, Proteomics, Metabolomics, and Ionomics , 2016, Front. Plant Sci..
[87] K. Dietz,et al. Silicon as Versatile Player in Plant and Human Biology: Overlooked and Poorly Understood , 2015, Front. Plant Sci..
[88] D. Chauhan,et al. Silicon nanoparticles (SiNp) alleviate chromium (VI) phytotoxicity in Pisum sativum (L.) seedlings. , 2015, Plant physiology and biochemistry : PPB.
[89] F. Abbas,et al. Mechanisms of silicon-mediated alleviation of heavy metal toxicity in plants: A review. , 2015, Ecotoxicology and environmental safety.
[90] H. Cai,et al. A hemicellulose-bound form of silicon inhibits cadmium ion uptake in rice (Oryza sativa) cells. , 2015, The New phytologist.
[91] Mingxin Wang,et al. Effects of nano-silicon and common silicon on lead uptake and translocation in two rice cultivars , 2015, Frontiers of Environmental Science & Engineering.
[92] M. Rizwan,et al. Effect of silicon on wheat seedlings (Triticum turgidum L.) grown in hydroponics and exposed to 0 to 30 µM Cu , 2015, Planta.
[93] Fayuan Wang,et al. Foliar application with nano-silicon alleviates Cd toxicity in rice seedlings , 2015, Environmental Science and Pollution Research.
[94] G. Owens,et al. Metal uptake via phosphate fertilizer and city sewage in cereal and legume crops in Pakistan , 2015, Environmental Science and Pollution Research.
[95] Shirong Zhang,et al. Effects of nanoscale silica sol foliar application on arsenic uptake, distribution and oxidative damage defense in rice (Oryza sativa L.) under arsenic stress , 2014 .
[96] J. Silva,et al. Effects of Exogenous Silicon on Cadmium Accumulation and Biological Responses of Nigella sativa L. (Black Cumin) , 2014 .
[97] C. Dumat,et al. Foliar uptake and metal(loid) bioaccessibility in vegetables exposed to particulate matter , 2014, Environmental Geochemistry and Health.
[98] D. Nowak,et al. Foliar or root exposures to smelter particles: consequences for lead compartmentalization and speciation in plant leaves. , 2014, The Science of the total environment.
[99] Kyung-Min Kim,et al. Silicon mitigates heavy metal stress by regulating P-type heavy metal ATPases, Oryza sativa low silicon genes, and endogenous phytohormones , 2014, BMC Plant Biology.
[100] N. Iqbal,et al. Alleviation of Lead Toxicity by Silicon is Related to Elevated Photosynthesis, Antioxidant Enzymes Suppressed Lead Uptake and Oxidative Stress in Cotton , 2013 .
[101] Ying-Tang Lu,et al. Copper regulates primary root elongation through PIN1-mediated auxin redistribution. , 2013, Plant & cell physiology.
[102] V. Rajendran,et al. Growth and physiological responses of maize (Zea mays L.) to porous silica nanoparticles in soil , 2012, Journal of Nanoparticle Research.
[103] S. Gallego,et al. Oxidative post translational modifications of proteins related to cell cycle are involved in cadmium toxicity in wheat seedlings. , 2012, Plant science : an international journal of experimental plant biology.
[104] V. Römheld,et al. Silicon ameliorates manganese toxicity in cucumber by decreasing hydroxyl radical accumulation in the leaf apoplast. , 2012, Journal of experimental botany.
[105] Chongling Yan,et al. Effects of silicon on the distribution of cadmium compartmentation in root tips of Kandelia obovata (S., L.) Yong. , 2012, Environmental pollution.
[106] Anita Singh,et al. Metabolic responses of Azolla pinnata to cadmium stress: photosynthesis, antioxidative system and phytoremediation , 2011 .
[107] Guo-ping Zhang,et al. Alleviation of Chromium Toxicity by Silicon Addition in Rice Plants , 2011 .
[108] A. Meharg. Trace Elements in Soils and Plants . 4th edition. By A. Kabata-Pendias. Boca Raton, FL, USA: CRC Press/Taylor & Francis Group (2010), pp. 548, US$159.95. ISBN 9781420093681. , 2011, Experimental Agriculture.
[109] S. Khandekar,et al. Soluble silicon modulates expression of Arabidopsis thaliana genes involved in copper stress. , 2011, Journal of plant physiology.
[110] J. Morel,et al. Mitigation effects of silicon rich amendments on heavy metal accumulation in rice (Oryza sativa L.) planted on multi-metal contaminated acidic soil. , 2011, Chemosphere.
[111] Y. Guisez,et al. The cellular redox state as a modulator in cadmium and copper responses in Arabidopsis thaliana seedlings. , 2011, Journal of plant physiology.
[112] G. Shi,et al. Silicon alleviates cadmium toxicity in peanut plants in relation to cadmium distribution and stimulation of antioxidative enzymes , 2010, Plant Growth Regulation.
[113] J. Frantz,et al. Alleviation of Copper Toxicity in Arabidopsis thaliana by Silicon Addition to Hydroponic Solutions , 2008 .
[114] N. Yamaji,et al. A Transporter Regulating Silicon Distribution in Rice Shoots[W] , 2008, The Plant Cell Online.
[115] Fusuo Zhang,et al. Long-term effects of exogenous silicon on cadmium translocation and toxicity in rice (Oryza sativa L.) , 2008 .
[116] K. Tamai,et al. Genotypic Difference in Silicon Uptake and Expression of Silicon Transporter Genes in Rice1 , 2007, Plant Physiology.
[117] K. Du,et al. Effects of Pb2+ on the active oxygen-scavenging enzyme activities and ultrastructure in Potamogeton crispus leaves , 2007, Russian Journal of Plant Physiology.
[118] F. Belzile,et al. The protective role of silicon in the Arabidopsis–powdery mildew pathosystem , 2006, Proceedings of the National Academy of Sciences.
[119] Naoki Yamaji,et al. Silicon uptake and accumulation in higher plants. , 2006, Trends in plant science.
[120] Xiaoe Yang,et al. Trace elements in agroecosystems and impacts on the environment. , 2005, Journal of trace elements in medicine and biology : organ of the Society for Minerals and Trace Elements.
[121] C. Foyer,et al. Oxidant and antioxidant signalling in plants: a re-evaluation of the concept of oxidative stress in a physiological context , 2005 .
[122] Jian Feng Ma,et al. Uptake system of silicon in different plant species. , 2005, Journal of experimental botany.
[123] A. El-Taher,et al. Multi-element determination in sandstone rock by instrumental neutron activation analysis , 2004 .
[124] V. Römheld,et al. Role of leaf apoplast in silicon‐mediated manganese tolerance of Cucumis sativus L. , 2002 .
[125] C. Poschenrieder,et al. The role of root exudates in aluminium resistance and silicon-induced amelioration of aluminium toxicity in three varieties of maize (Zea mays L.). , 2001, Journal of experimental botany.
[126] D. Neumann,et al. Silicon and heavy metal tolerance of higher plants. , 2001, Phytochemistry.
[127] D. Evans,et al. Aluminium/silicon interactions in higher plants , 1995 .
[128] A. Ditta,et al. Role of Organic Amendments to Mitigate Cd Toxicity and Its Assimilation in Triticum aestivum L. , 2022, Phyton.
[129] Fangbai Li,et al. Foliar application of silica nanoparticles alleviates arsenic accumulation in rice grain: Co-localization of silicon and arsenic in node , 2022, Environmental Science: Nano.
[130] S. A. Ashraf,et al. Physiological and Molecular Responses to Heavy Metal Stresses in Plants , 2021, Harsh Environment and Plant Resilience.
[131] P. Ahmad,et al. Effect of foliar applications of silicon and titanium dioxide nanoparticles on growth, oxidative stress, and cadmium accumulation by rice (Oryza sativa) , 2019, Acta Physiologiae Plantarum.
[132] Daniel C W Tsang,et al. Speciation, mobilization, and bioaccessibility of arsenic in geogenic soil profile from Hong Kong. , 2018, Environmental pollution.
[133] R. Chen,et al. Foliar application with nano-silicon reduced cadmium accumulation in grains by inhibiting cadmium translocation in rice plants , 2017, Environmental Science and Pollution Research.
[134] Jae-E. Yang,et al. Potential toxicity of trace elements and nanomaterials to Chinese cabbage in arsenic- and lead-contaminated soil amended with biochars , 2017, Environmental Geochemistry and Health.
[135] Lei Wang,et al. A review of heavy metal pollution levels and health risk assessment of urban soils in Chinese cities , 2017, Environmental Science and Pollution Research.
[136] V. K. Suri,et al. Soil Factors Associated with Micronutrient Acquisition in Crops- Biofortification Perspective , 2016 .
[137] D. Kalaivanan,et al. Mechanisms of Heavy Metal Toxicity in Plants , 2016 .
[138] Minli Xu,et al. Photosynthesis performance, antioxidant enzymes, and ultrastructural analyses of rice seedlings under chromium stress , 2015, Environmental Science and Pollution Research.
[139] Hung-Yu Lai. Effects of Leaf Area and Transpiration Rate on Accumulation and Compartmentalization of Cadmium in Impatiens walleriana , 2014, Water, Air, & Soil Pollution.
[140] B. J. Alloway,et al. Sources of Heavy Metals and Metalloids in Soils , 2013 .
[141] Shirong Zhang,et al. Silicon Mediated the Detoxification of Cr on Pakchoi (Brassica Chinensis L.) in Cr-contaminated Soil , 2013 .
[142] Daoming Wu,et al. Silicate-Mediated Alleviation of Pb Toxicity in Banana Grown in Pb-Contaminated Soil , 2011, Biological Trace Element Research.
[143] K. Dietz,et al. The relationship between metal toxicity and cellular redox imbalance. , 2009, Trends in plant science.
[144] O. Wada. What are Trace Elements ? — Their deficiency and excess states — , 2004 .
[145] K. Iwasaki,et al. Leaf apoplastic silicon enhances manganese tolerance of cowpea (Vigna unguiculata) , 2002 .