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Original Articles

Extraction of iron from plant leaves by Fe (II) chelators

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Pages 777-784 | Published online: 21 Nov 2008

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Read on this site (14)

Anna Assimakopoulou, ConstantinD. Holevas & Konstantinos Fasseas. (2011) RELATIVE SUSCEPTIBILITY OF SOME PRUNUS ROOTSTOCKS IN HYDROPONICS TO IRON DEFICIENCY. Journal of Plant Nutrition 34:7, pages 1014-1033.
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Ram Narayan Kumawat, Praveen Singh Rathore, Narayan Singh Nathawat & Mahesh Mahatma. (2006) Effect of Sulfur and Iron on Enzymatic Activity and Chlorophyll Content of Mungbean. Journal of Plant Nutrition 29:8, pages 1451-1467.
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Sahriye Sönmez & Mustafa Kaplan. (2005) Comparison of Various Analysis Methods for Determination of Iron Chlorosis in Apple Trees. Journal of Plant Nutrition 27:11, pages 2007-2018.
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L. Montás‐Ramírez, N. Claassen & A. M. Moawad. (2003) Determination of Fe2+ in Rice Leaves (Oryza sativa L.) by Using the Chelator BPDS Alone or Combined with the Chelator EDTA. Journal of Plant Nutrition 26:10-11, pages 2023-2030.
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Angelika Zohlen. (2000) Use of 1,10‐phenanthroline in estimating metabolically active iron in plants. Communications in Soil Science and Plant Analysis 31:3-4, pages 481-500.
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G. Ouzounidou, I. Ilias, H. Tranopoulou & S. Karataglis. (1998) Amelioration of copper toxicity by iron on Spinach physiology. Journal of Plant Nutrition 21:10, pages 2089-2101.
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J. Benton Jones$suffix/text()$suffix/text() & Arthur Wallace. (1992) Sample preparation and determination of iron in plant tissue samples. Journal of Plant Nutrition 15:10, pages 2085-2108.
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Manuel Sanz, Javier Cavero & Javier Abadía. (1992) Iron chlorosis in the Ebro River basin, Spain. Journal of Plant Nutrition 15:10, pages 1971-1981.
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Javier Abadía. (1992) Leaf responses to Fe deficiency: A review. Journal of Plant Nutrition 15:10, pages 1699-1713.
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Anunciación Abadía, Manuel Sanz, Javier de las Rivas & Javier Abadía. (1989) Photosynthetic pigments and mineral composition of iron deficient pear leaves. Journal of Plant Nutrition 12:7, pages 827-838.
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MustafaD.K. Abo‐Rady. (1988) Effect of iron deficiency on growth, micronutrient status and chlorophyll content of vinca rosea grown in calcareous soils. Arid Soil Research and Rehabilitation 2:4, pages 275-283.
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Norman Terry & Javier Abadía. (1986) Function of iron in chloroplasts. Journal of Plant Nutrition 9:3-7, pages 609-646.
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J. Abadía, J.N. Nishio, E. Monge, L. Montañés & L. Heras. (1985) Mineral composition of peach leaves affected by iron chlorosis. Journal of Plant Nutrition 8:10, pages 965-975.
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J. Abadía, J.N. Nishio, E. Monge, L. Montañés & L. Heras. (1985) Mineral composition of peach leaves affected by iron chlorosis. Journal of Plant Nutrition 8:8, pages 697-707.
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Articles from other publishers (41)

Nikolai P. Bityutskii, Kirill L. Yakkonen, Yulia M. Napolskikh, Danil Pampur, Gleb O. Yuriev, Konstantin N. Semenov & Dmitry G. Letenko. (2023) Protective role of fullerenol and arginine C60 fullerene against copper toxicity in cucumber. Plant Physiology and Biochemistry 204, pages 108095.
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Zahra Gheshlaghi, Reza Khorassani & Javier Abadia. (2022) Two Fe mining sub-products and three thiol compounds alleviate Fe deficiency in soybean (Glycine max L.) grown in a calcareous soil in greenhouse conditions. Plant and Soil 482:1-2, pages 469-490.
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Baolan Wang, Haifang Wei, Zhuo Chen, Yuting Li & Wen-Hao Zhang. (2022) Carbonate-Induced Chemical Reductants Are Responsible for Iron Acquisition in Strategy I Wild Herbaceous Plants Native to Calcareous Grasslands. Plant and Cell Physiology 63:6, pages 770-784.
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N.P. BITYUTSKII, K.L. YAKKONEN, K.A. LUKINA & K.N. SEMENOV. (2022) Fullerenol affects maize plants depending on their iron status. Biologia plantarum 66, pages 76-82.
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Nikolai P. Bityutskii, Kirill L. Yakkonen, Kseniia A. Lukina, Konstantin N. Semenov & Gayane G. Panova. (2020) Fullerenol can Ameliorate Iron Deficiency in Cucumber Grown Hydroponically. Journal of Plant Growth Regulation 40:3, pages 1017-1031.
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Nikolai P. Bityutskii, Kirill L. Yakkonen, Kseniia A. Lukina & Konstantin N. Semenov. (2020) Fullerenol increases effectiveness of foliar iron fertilization in iron-deficient cucumber. PLOS ONE 15:5, pages e0232765.
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Zahra Gheshlaghi, Reza Khorassani, Javier Abadía, Ana Alvarez-Fernández, Adrián Luis-Villarroya, Amir Fotovat & Mohammad Kafi. (2019) Glutathione supplementation prevents iron deficiency in Medicago scutellata grown in rock sand under different levels of bicarbonate. Plant and Soil 446:1-2, pages 43-63.
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Pradeep Kumar Yadav, Anita Singh & S. B. Agrawal. 2020. Sustainable Solutions for Elemental Deficiency and Excess in Crop Plants. Sustainable Solutions for Elemental Deficiency and Excess in Crop Plants 183 208 .
Zahra Gheshlaghi, Reza Khorassani, Javier Abadía, Mohammad Kafi & Amir Fotovat. (2019) Glutathione foliar fertilisation prevents lime‐induced iron chlorosis in soil grown Medicago scutellata . Journal of Plant Nutrition and Soil Science 182:4, pages 607-624.
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Gunta Jakobsone & Anita Osvalde. (2019) Peculiarities of calcium and iron effects on some wild terrestrial orchids in vitro compared to in vivo. In Vitro Cellular & Developmental Biology - Plant 55:1, pages 121-131.
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Sara Alcañiz, Juana D. Jordá & Mar Cerdán. (2017) Effectiveness of Iron Ethylenediamine- N , N ′-bis(hydroxyphenylacetic) Acid ( o , o -EDDHA/Fe 3+ ) Formulations with Different Ratios of Meso and d , l -Racemic Isomers as Iron Fertilizers . Journal of Agricultural and Food Chemistry 65:2, pages 253-259.
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Zhongwei Pan, Zhengquan Wang, Linna Zhu, Zhiming Zhu, Jinying Cai, Xiaoman Shen, Tingli Fan, Yingnan Zhang & Zhixiu Chen. (2015) Development of an Analytical Method Based on Temperature Controlled Solid-Liquid Extraction Using an Ionic Liquid as Solid Solvent. Molecules 20:12, pages 22137-22145.
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Marta Nunes da Silva, Ana P. Mucha, A. Cristina Rocha, Carlos R. Gomes & C. Marisa R. Almeida. (2014) Response of two salt marsh plants to short- and long-term contamination of sediment with cadmium. Journal of Soils and Sediments 15:3, pages 722-731.
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T. Oliveira, A.P. Mucha, I. Reis, P. Rodrigues, C.R. Gomes & C.M.R. Almeida. (2014) Copper phytoremediation by a salt marsh plant (Phragmites australis) enhanced by autochthonous bioaugmentation. Marine Pollution Bulletin 88:1-2, pages 231-238.
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A. Cristina S. Rocha, C. Marisa R. Almeida, M. Clara P. Basto & M. Teresa S.D. Vasconcelos. (2014) Antioxidant response of Phragmites australis to Cu and Cd contamination. Ecotoxicology and Environmental Safety 109, pages 152-160.
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Marta Nunes da Silva, Ana P. Mucha, A. Cristina Rocha, Carla Silva, Carolina Carli, Carlos R. Gomes & C. Marisa R. Almeida. (2014) Evaluation of the ability of two plants for the phytoremediation of Cd in salt marshes. Estuarine, Coastal and Shelf Science 141, pages 78-84.
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Marta Nunes da Silva, Ana P. Mucha, A. Cristina Rocha, Catarina Teixeira, Carlos R. Gomes & C. Marisa R. Almeida. (2014) A strategy to potentiate Cd phytoremediation by saltmarsh plants – Autochthonous bioaugmentation. Journal of Environmental Management 134, pages 136-144.
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Qian Zha, Yi Wang, Xin-Zhong Zhang & Zhen-Hai Han. (2014) Both immanently high active iron contents and increased root ferrous uptake in response to low iron stress contribute to the iron deficiency tolerance in Malus xiaojinensis. Plant Science 214, pages 47-56.
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M. Nunes da Silva, M. R. M. Lima & M. W. Vasconcelos. (2013) Susceptibility evaluation of P icea abies and C upressus lusitanica to the pine wood nematode ( B ursaphelenchus xylophilus ) . Plant Pathology 62:6, pages 1398-1406.
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Mar Cerdán, Antonio Sánchez‐Sánchez, Juana D. Jordá, Margarita Juárez & Juan Sánchez‐Andreu. (2013) Effect of commercial amino acids on iron nutrition of tomato plants grown under lime‐induced iron deficiency. Journal of Plant Nutrition and Soil Science 176:6, pages 859-866.
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Pedro N. Carvalho, José Luís Araújo, Ana P. Mucha, M. Clara P. Basto & C. Marisa R. Almeida. (2013) Potential of constructed wetlands microcosms for the removal of veterinary pharmaceuticals from livestock wastewater. Bioresource Technology 134, pages 412-416.
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Katrin Engel, Folkard Asch & Mathias Becker. (2012) In vivo staining of reduced iron by 2,2′ bipyridine in rice exposed to iron toxicity . Journal of Plant Nutrition and Soil Science 175:4, pages 548-552.
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Pedro N. Carvalho, M. Clara P. Basto & C. Marisa R. Almeida. (2012) Potential of Phragmites australis for the removal of veterinary pharmaceuticals from aquatic media. Bioresource Technology 116, pages 497-501.
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Liya Li, Qiuyi Cai, Kai Jia, Meng Zhang & Changhong Guo. (2010) Molecular and Phenotypic Characterization of Transgenic Tobacco Expressing the Arabidopsis IRT1 Gene. Molecular and Phenotypic Characterization of Transgenic Tobacco Expressing the Arabidopsis IRT1 Gene.
Praveen Kumar, Rajesh Kumar Tewari & Parma Nand Sharma. (2010) Sodium nitroprusside-mediated alleviation of iron deficiency and modulation of antioxidant responses in maize plants. AoB PLANTS 2010.
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Marta Vasconcelos, Helene Eckert, Venancio Arahana, George Graef, Michael A. Grusak & Tom Clemente. (2006) Molecular and phenotypic characterization of transgenic soybean expressing the Arabidopsis ferric chelate reductase gene, FRO2. Planta 224:5, pages 1116-1128.
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Victoria Fernández & Günther Winkelmann. (2005) The determination of ferric iron in plants by HPLC using the microbial iron chelator desferrioxamine E. BioMetals 18:1, pages 53-62.
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Lázaro Montás-Ramírez, Norbert Claassen & Atef Moawad Moawad. 2002. Durchwurzelung, Rhizodeposition und Pflanzenverfügbarkeit von Nährstoffen und Schwermetallen. Durchwurzelung, Rhizodeposition und Pflanzenverfügbarkeit von Nährstoffen und Schwermetallen 45 51 .
Ajmi Larbi, Fermín Morales, AnaFlor López-Millán, Yolanda Gogorcena, Anunciación Abadía, PetraR. Moog & Javier Abadía. (2001) Technical Advance: Reduction of Fe(III)-Chelates by Mesophyll LeafDisks of Sugar Beet. Multi-Component Origin and Effects of FeDeficiency. Plant and Cell Physiology 42:1, pages 94-105.
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Elena B. González-Vallejo, Fermı́n Morales, Luis CistuéAnunciación Abadı́a & Javier Abadı́a. (2000) Iron Deficiency Decreases the Fe(III)-Chelate Reducing Activity of Leaf Protoplasts. Plant Physiology 122:2, pages 337-344.
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