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Phytosiderophores and organics secreted by roots

Efficiency of iron extraction from soil by mugineic acid family phytosiderophores

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Pages 643-651 | Published online: 21 Nov 2008

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MarkL. Bernards, EmilyA. Buxton, VonD. Jolley, AmandaK. Shiffler, TrentonF. Stanger & Jennifer Rands. (2014) MAIZE HYBRIDS DIFFER IN THEIR 24-H PATTERNS OF PHYTOSIDEROPHORE RELEASE. Journal of Plant Nutrition 37:4, pages 575-594.
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Kazuaki Kudo, Hiroaki Kudo & Shigenao Kawai. (2007) Cadmium uptake in barley affected by iron concentration of the medium: Role of phytosiderophores. Soil Science and Plant Nutrition 53:3, pages 259-266.
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N.K. Fageria & L.F. Stone. (2006) Physical, Chemical, and Biological Changes in the Rhizosphere and Nutrient Availability. Journal of Plant Nutrition 29:7, pages 1327-1356.
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Yuanmei Zuo, Xiaolin Li, Yiping Cao, Fusuo Zhang & Peter Christie. (2003) Iron Nutrition of Peanut Enhanced by Mixed Cropping with Maize: Possible Role of Root Morphology and Rhizosphere Microflora. Journal of Plant Nutrition 26:10-11, pages 2093-2110.
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Shah Alam, Shigeru Kamei & Shigenao Kawai. (2001) Effects of excess manganese and metal chelators on micronutrient concentrations in the xylem sap of iron-deficient barley plants. Soil Science and Plant Nutrition 47:4, pages 665-674.
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Shah Alam, Shigeru Kamei & Shigenao Kawai. (2001) Metal micronutrients in xylem sap of iron-deficient barley as affected by plant-borne, microbial, and synthetic metal chelators. Soil Science and Plant Nutrition 47:1, pages 149-156.
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Shah Alam, Shigeru Kamei & Shigenao Kawai. (2001) RESPONSE OF IRON-DEFICIENT BARLEY PLANTS TO MANGANESE IN NUTRIENT SOLUTION. Journal of Plant Nutrition 24:1, pages 147-158.
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Ismail Cakmak, Levent Öztürk, Sema Karanlik, Horst Marschner & Hasan Ekiz. (1996) Zinc‐efficient wild grasses enhance release of phytosiderophores under zinc deficiency. Journal of Plant Nutrition 19:3-4, pages 551-563.
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Chunyuan Huang, RobinD. Graham, SusanJ. Barker & Satoshi Mori. (1996) Differential expression of iron deficiency‐induced genes in barley genotypes with differing manganese efficiency. Journal of Plant Nutrition 19:2, pages 407-420.
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RossM. Welch & Larry Shuman. (1995) Micronutrient Nutrition of Plants. Critical Reviews in Plant Sciences 14:1, pages 49-82.
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Satoshi Watanabe & Satoshi Matsumoto. (1994) Effect of monosilicate, phosphate, and carbonate on iron dissolution by mugineic acid. Soil Science and Plant Nutrition 40:1, pages 9-17.
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A. Mozafar. (1994) Contact between root and iron substrate and the mobilization of iron by soybean roots. Journal of Plant Nutrition 17:2-3, pages 267-278.
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Smail Cakmak, KemalY. Gülüt, Horst Marschner & RobinD. Graham. (1994) Efect of zinc and iron deficiency on phytos1derophore release in wheat genotypes differing in zinc efficiency. Journal of Plant Nutrition 17:1, pages 1-17.
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D. Vaughan, D.G. Lumsdon & D.J. Linehan. (1993) Influence of Dissolved Organic Matter On the Bio-Availability and Toxicity of Metals in Soils and Aquatic Systems. Chemistry and Ecology 8:3, pages 185-201.
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Kalyan Singh, M. Chino, N. K. Nisizawa, S. Goto, T. Nakanishi, S. Takagi & S. Mori. (1992) Iron extraction efficacy of plant borne mugineic acid family phytosiderophores in indian calcareous soils. Journal of Plant Nutrition 15:10, pages 1625-1645.
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Fu-Suo Zhang, Volker Römheld & Horst Marschner. (1991) Diurnal rhythm of release of phytosiderophores and uptake rate of zinc in iron-deficient wheat. Soil Science and Plant Nutrition 37:4, pages 671-678.
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RefatA. Youssef & Mitsuo Chino. (1989) Root-induced changes in the rhizosphere of plants. II. distribution of heavy metals across the rhizosphere in soils. Soil Science and Plant Nutrition 35:4, pages 609-621.
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M. Walter, E. Oburger, Y. Schindlegger, S. Hann, M. Puschenreiter, S. M. Kraemer & W. D. C. Schenkeveld. (2016) Retention of phytosiderophores by the soil solid phase – adsorption and desorption. Plant and Soil 404:1-2, pages 85-97.
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Stephan M. Kraemer, Owen W. Duckworth, James M. Harrington & Walter D. C. Schenkeveld. (2014) Metallophores and Trace Metal Biogeochemistry. Aquatic Geochemistry 21:2-4, pages 159-195.
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M. L. Dotaniya & V. D. Meena. (2014) Rhizosphere Effect on Nutrient Availability in Soil and Its Uptake by Plants: A Review. Proceedings of the National Academy of Sciences, India Section B: Biological Sciences 85:1, pages 1-12.
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W. D. C. Schenkeveld, Y. Schindlegger, E. Oburger, M. Puschenreiter, S. Hann & S. M. Kraemer. (2014) Geochemical Processes Constraining Iron Uptake in Strategy II Fe Acquisition. Environmental Science & Technology 48:21, pages 12662-12670.
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W. D. C. Schenkeveld, E. Oburger, B. Gruber, Y. Schindlegger, S. Hann, M. Puschenreiter & S. M. Kraemer. (2014) Metal mobilization from soils by phytosiderophores – experiment and equilibrium modeling. Plant and Soil 383:1-2, pages 59-71.
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Rajendra Prasad, Yashbir S. Shivay & Dinesh Kumar. 2014. 55 91 .
HONGCHUN XIONG, YUSUKE KAKEI, TAKANORI KOBAYASHI, XIAOTONG GUO, MIKIO NAKAZONO, HIROKAZU TAKAHASHI, HIROMI NAKANISHI, HONGYUN SHEN, FUSUO ZHANG, NAOKO K. NISHIZAWA & YUANMEI ZUO. (2013) Molecular evidence for phytosiderophore‐induced improvement of iron nutrition of peanut intercropped with maize in calcareous soil. Plant, Cell & Environment 36:10, pages 1888-1902.
Crossref
Vishal Chugh & Harcharan S. Dhaliwal. 2013. Agricultural Sustainability. Agricultural Sustainability 177 196 .
Nand Fageria. 2012. The Role of Plant Roots in Crop Production. The Role of Plant Roots in Crop Production 185 226 .
Rong-li SHI, Hong-mei HAO, Xiao-yun FAN, Md Rezaul Karim, Fu-suo ZHANG & Chun-qin ZOU. (2012) Responses of Aerobic Rice (Oryza sativa L.) to Iron Deficiency. Journal of Integrative Agriculture 11:6, pages 938-945.
Crossref
Sabrina Zuchi, Stefano Cesco & Stefania Astolfi. (2012) High S supply improves Fe accumulation in durum wheat plants grown under Fe limitation. Environmental and Experimental Botany 77, pages 25-32.
Crossref
MARIYA PTASHNYK, TIINA ROOSE, DAVEY L. JONES & GUY J. D. KIRK. (2011) Enhanced zinc uptake by rice through phytosiderophore secretion: a modelling study. Plant, Cell & Environment 34:12, pages 2038-2046.
Crossref
Seher Bahar Aciksoz, Atilla Yazici, Levent Ozturk & Ismail Cakmak. (2011) Biofortification of wheat with iron through soil and foliar application of nitrogen and iron fertilizers. Plant and Soil 349:1-2, pages 215-225.
Crossref
Sarah S. Conte & Elsbeth L. Walker. (2011) Transporters Contributing to Iron Trafficking in Plants. Molecular Plant 4:3, pages 464-476.
Crossref
Fusuo Zhang, Jianbo Shen, Junling Zhang, Yuanmei Zuo, Long Li & Xinping Chen. 2010. 1 32 .
Y. Zuo & F. Zhang. (2009) Iron and zinc biofortification strategies in dicot plants by intercropping with gramineous species. A review. Agronomy for Sustainable Development 29:1, pages 63-71.
Crossref
Nidhi Rawat, Vijay K. Tiwari, Neelam Singh, Gursharn S. Randhawa, Kuldeep Singh, Parveen Chhuneja & Harcharan S. Dhaliwal. (2008) Evaluation and utilization of Aegilops and wild Triticum species for enhancing iron and zinc content in wheat. Genetic Resources and Crop Evolution 56:1, pages 53-64.
Crossref
Nishanth Tharayil, Prasanta Bhowmik, Peter Alpert, Elsbeth Walker, Dulasiri Amarasiriwardena & Baoshan Xing. (2008) Dual purpose secondary compounds: phytotoxin of Centaurea diffusa also facilitates nutrient uptake . New Phytologist 181:2, pages 424-434.
Crossref
Y. Zuo & F. Zhang. 2009. Sustainable Agriculture. Sustainable Agriculture 571 582 .
Chunqin Zou, Fusuo Zhang, Xiaopeng Gao, Ellis Hoffland & Thomas Kuyper. 2008. Development and Uses of Biofortified Agricultural Products. Development and Uses of Biofortified Agricultural Products 153 170 .
Chunqin Zou, Fusuo Zhang, Yuanmei Zuo, Xiaopeng Gao & Mingsheng Fan. 2008. Development and Uses of Biofortified Agricultural Products. Development and Uses of Biofortified Agricultural Products 71 93 .
S. Haase, A. Rothe, A. Kania, J. Wasaki, V. Römheld, C. Engels, E. Kandeler & G. Neumann. (2008) Responses to Iron Limitation in Hordeum vulgare L. as Affected by the Atmospheric CO 2 Concentration . Journal of Environmental Quality 37:3, pages 1254-1262.
Crossref
Yuanmei Zuo & Fusuo Zhang. (2007) Effect of peanut mixed cropping with gramineous species on micronutrient concentrations and iron chlorosis of peanut plants grown in a calcareous soil. Plant and Soil 306:1-2, pages 23-36.
Crossref
Günter Neumann & Volker Römheld. 2007. The Rhizosphere. The Rhizosphere 23 72 .
S. M. Reichman & D. R. Parker. (2007) Probing the effects of light and temperature on diurnal rhythms of phytosiderophore release in wheat. New Phytologist 174:1, pages 101-108.
Crossref
Syuntaro Hiradate, Jian Feng Ma & Hideaki Matsumoto. 2007. 65 132 .
Stefano Cesco, Adamo Domenico Rombolà, Massimo Tagliavini, Zeno Varanini & Roberto Pinton. (2006) Phytosiderophores released by graminaceous species promote 59Fe-uptake in citrus. Plant and Soil 287:1-2, pages 223-233.
Crossref
Jeffrey L. Everhart, David McNearJr.Jr., Edward Peltier, Daniel van der Lelie, Rufus L. Chaney & Donald L. Sparks. (2006) Assessing nickel bioavailability in smelter-contaminated soils. Science of The Total Environment 367:2-3, pages 732-744.
Crossref
P.U. Reichard, S.M. Kraemer, S.W. Frazier & R. Kretzschmar. (2005) Goethite Dissolution in the Presence of Phytosiderophores: Rates, Mechanisms, and the Synergistic Effect of Oxalate. Plant and Soil 276:1-2, pages 115-132.
Crossref
David R. Parker, Suzanne M. Reichman & David E. Crowley. 2005. Roots and Soil Management: Interactions between Roots and the Soil. Roots and Soil Management: Interactions between Roots and the Soil 57 93 .
S.M. Reichman & D.R. Parker. 2005. Biogeochemistry of Trace Elements in the Rhizosphere. Biogeochemistry of Trace Elements in the Rhizosphere 129 156 .
A.C. Chang, A.L. Page & Bon-Jun Koo. 2002. Soil Mineral-Organic Matter-Microorganism Interactions and Ecosystem Health. Soil Mineral-Organic Matter-Microorganism Interactions and Ecosystem Health 43 57 .
Salvatore Deiana, Bruno Manunza, Amedeo Palma, Alessandra Premoli & Carlo Gessa. 2000. Trace Elements in the Rhizosphere. Trace Elements in the Rhizosphere.
S. Hiradate & K. Inoue. 1999. Effect of Mineral-Organic-Microorganism Interactions on Soil and Freshwater Environments. Effect of Mineral-Organic-Microorganism Interactions on Soil and Freshwater Environments 89 96 .
D.L. Jones & A.C. Edwards. (1998) Influence of sorption on the biological utilization of two simple carbon substrates. Soil Biology and Biochemistry 30:14, pages 1895-1902.
Crossref
P. Hinsinger. 1998. 225 265 .
Jian Feng Ma & Kyosuke Nomoto. (2006) Effective regulation of iron acquisition in graminaceous plants. The role of mugineic acids as phytosiderophores. Physiologia Plantarum 97:3, pages 609-617.
Crossref
D. Gries & M. Runge. (2014) Responses of Calcicole and Calcifuge Poaceae Species to Iron‐Limiting Conditions. Botanica Acta 108:6, pages 482-489.
Crossref
David L. Jones & Peter R. Darrah. (1995) Influx and efflux of organic acids across the soil-root interface of Zea mays L. and its implications in rhizosphere C flow. Plant and Soil 173:1, pages 103-109.
Crossref
H. Marschner & V. Römheld. 1995. Iron Nutrition in Soils and Plants. Iron Nutrition in Soils and Plants 375 388 .
Michel J. Mench & Sylvie Fargues. 1995. Iron Nutrition in Soils and Plants. Iron Nutrition in Soils and Plants 217 223 .
F. Awad, V. Römheld & H. Marschner. 1995. Iron Nutrition in Soils and Plants. Iron Nutrition in Soils and Plants 99 104 .
A. Walter, V. Römheld, H. Marschner & D.E. Crowley. (1994) Iron nutrition of cucumber and maize: Effect of Pseudomonas putida YC 3 and its siderophore. Soil Biology and Biochemistry 26:8, pages 1023-1031.
Crossref
H. Marschner & V. Römheld. (1994) Strategies of plants for acquisition of iron. Plant and Soil 165:2, pages 261-274.
Crossref
Michel J. Mench & Sylvie Fargues. (1994) Metal uptake by iron-efficient and inefficient oats. Plant and Soil 165:2, pages 227-233.
Crossref
F. Awad, V. Römheld & H. Marschner. (1994) Effect of root exudates on mobilization in the rhizosphere and uptake of iron by wheat plants. Plant and Soil 165:2, pages 213-218.
Crossref
D. L. Jones, A. C. Edwards, K. Donachie & P. R. Darrah. (1994) Role of proteinaceous amino acids released in root exudates in nutrient acquisition from the rhizosphere. Plant and Soil 158:2, pages 183-192.
Crossref
F. S. Zhang. (1993) Mobilisation of iron and manganese by plant-borne and synthetic metal chelators. Plant and Soil 155-156:1, pages 111-114.
Crossref
P. R. Darrah. (1993) The rhizosphere and plant nutrition: a quantitative approach. Plant and Soil 155-156:1, pages 1-20.
Crossref
SEI-ICHI TAKAGI. 1993. Iron Chelation in Plants and Soil Microorganisms. Iron Chelation in Plants and Soil Microorganisms 111 131 .
F. S. Zhang. 1993. Plant Nutrition — from Genetic Engineering to Field Practice. Plant Nutrition — from Genetic Engineering to Field Practice 115 118 .
P. R. Darrah. 1993. Plant Nutrition — from Genetic Engineering to Field Practice. Plant Nutrition — from Genetic Engineering to Field Practice 3 22 .
H. Marschner. 1993. Zinc in Soils and Plants. Zinc in Soils and Plants 59 77 .
M. Mench & E. Martin. (1991) Mobilization of cadmium and other metals from two soils by root exudates of Zea mays L., Nicotiana tabacum L. and Nicotiana rustica L.. Plant and Soil 132:2, pages 187-196.
Crossref
D. E. Crowley, Y. C. Wang, C. P. P. Reid & P. J. Szaniszlo. (1991) Mechanisms of iron acquisition from siderophores by microorganisms and plants. Plant and Soil 130:1-2, pages 179-198.
Crossref
F. S. Zhang, M. Treeby, V. R�mheld & H. Marschner. (1991) Mobilization of iron by phytosiderophores as affected by other micronutrients. Plant and Soil 130:1-2, pages 173-178.
Crossref
S. Mori, Naoko Nishizawa, H. Hayashi, M. Chino, E. Yoshimura & J. Ishihara. (1991) Why are young rice plants highly susceptible to iron deficiency?. Plant and Soil 130:1-2, pages 143-156.
Crossref
V. R�mheld. (1991) The role of phytosiderophores in acquisition of iron and other micronutrients in graminaceous species: An ecological approach. Plant and Soil 130:1-2, pages 127-134.
Crossref
H. Marschner. 1991. Iron Nutrition and Interactions in Plants. Iron Nutrition and Interactions in Plants 365 372 .
D. E. Crowley, Y. C. Wang, C. P. P. Reid & P. J. Szaniszlo. 1991. Iron Nutrition and Interactions in Plants. Iron Nutrition and Interactions in Plants 213 232 .
F. S. Zhang, M. Treeby, V. RÖmheld & H. Marschner. 1991. Iron Nutrition and Interactions in Plants. Iron Nutrition and Interactions in Plants 205 210 .
S. Mori, Naoko Nishizawa, H. Hayashi, M. Chino, E. Yoshimura & J. Ishihara. 1991. Iron Nutrition and Interactions in Plants. Iron Nutrition and Interactions in Plants 175 188 .
V. RÖmheld. 1991. Iron Nutrition and Interactions in Plants. Iron Nutrition and Interactions in Plants 159 166 .
V. R�mheld & H. Marschner. (1990) Genotypical differences among graminaceous species in release of phytosiderophores and uptake of iron phytosiderophores. Plant and Soil 123:2, pages 147-153.
Crossref
Satoshi MORI, Naoko KISHI-NISHIZAWA & Junzo FUJUGAKI. (1990) Identification of rye chromosome 5R as a carrier of the genes for mugineic acid synthetase and 3-hydroxymugineic acid synthetase using wheat-rye addition lines.. The Japanese Journal of Genetics 65:5, pages 343-352.
Crossref
RALPH B. CLARK. 1990. Crops As Enhancers of Nutrient Use. Crops As Enhancers of Nutrient Use 131 209 .
V. Römheld & H. Marschner. 1990. Genetic Aspects of Plant Mineral Nutrition. Genetic Aspects of Plant Mineral Nutrition 77 83 .
Tasuku Murakami, Kunio Ise, Minato Hayakawa, Shigeru Kamei & Sei-ichi Takagi. (1989) Stabilities of Metal Complexes of Mugineic Acids and Their Specific Affinities for Iron(III). Chemistry Letters 18:12, pages 2137-2140.
Crossref
H. F. Bienfait. (1989) Prevention of stress in iron metabolism of plants. Acta Botanica Neerlandica 38:2, pages 105-129.
Crossref
Horst Marschner, Michael Treeby & Volker Römheld. (2007) Role of root‐induced changes in the rhizosphere for iron acquisition in higher plants. Zeitschrift für Pflanzenernährung und Bodenkunde 152:2, pages 197-204.
Crossref

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