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HORT640 - Metabolic Plant Physiology
References, aluminum
Ahad A, Nick P. Actin is bundled in activation-tagged tobacco mutants that tolerate aluminum. Planta 225: 451-468 (2007).
Ahn SJ, Sivaguru M, Chung GC, Rengel Z, Matsumoto H. Aluminium-induced growth inhibition is associated with impaired efflux and influx of H+ across the plasma membrane in root apices of squash (Cucurbita pepo). J. Exp. Bot. 53: 1959-1966 (2002).
Ahn SJ, Sivaguru M, Osawa H, Chung GC, Matsumoto H. Aluminum inhibits the H(+)-ATPase activity by permanently altering the plasma membrane surface potentials in squash roots. Plant Physiol. 126: 1381-1390 (2001).
Ahsan N, Lee DG, Alam I, Kim PJ, Lee JJ, Ahn YO, Kwak SS, Lee IJ, Bahk JD, Kang KY, Renaut J, Komatsu S, Lee BH. Comparative proteomic study of arsenic-induced differentially expressed proteins in rice roots reveals glutathione plays a central role during As stress. Proteomics 8: 3561-3576 (2008).
Albert L, Nemeth ZI, Varga S. The effect of heat shock on the formaldehyde cycle in germinating acorns of European Turkey oak. Acta Biol. Hung. 49: 363-368 (1998).
Anoop VM, Basu U, McCammon MT, McAlister-Henn L, Taylor GJ. Modulation of citrate metabolism alters aluminum tolerance in yeast and transgenic canola overexpressing a mitochondrial citrate synthase. Plant Physiol. 132: 2205-2217 (2003).
Babourina O, Rengel Z. Uptake of aluminium into Arabidopsis root cells measured by fluorescent lifetime imaging. Ann. Bot. (Lond.) 104: 189-195 (2009).
Barone P, Rosellini D, Lafayette P, Bouton J, Veronesi F, Parrott W. Bacterial citrate synthase expression and soil aluminum tolerance in transgenic alfalfa. Plant Cell Rep. 27: 893-901 (2008).
Baskin TI, Bivens NJ. Stimulation of radial expansion in Arabidopsis roots by inhibitors of actomyosin and vesicle secretion but not by various inhibitors of metabolism. Planta 197: 514-521 (1995).
Batty LC, Baker AJ, Wheeler BD. Aluminium and phosphate uptake by Phragmites australis: the role of Fe, Mn and Al root plaques. Ann. Bot. (Lond.) 89: 443-449 (2002).
Blancaflor EB, Jones DL, Gilroy S. Alterations in the cytoskeleton accompany aluminum-induced growth inhibition and morphological changes in primary roots of maize. Plant Physiol. 118: 159-172 (1998).
Blevins DG, Lukaszewski KM. Boron in plant structure and function. Annu. Rev. Plant Physiol. Plant Mol. Biol. 49: 481-500 (1998).
Bot AJ, Nachtergaele FO, Young A; FOOD AND AGRICULTURE ORGANIZATION OF THE UNITED NATIONS. Land resource potential and constraints at regional and country levels. World Soil Resources Report 90; pp. 1-114 (2000).
Brosche M, Strid A. Cloning, expression, and molecular characterization of a small pea gene family regulated by low levels of ultraviolet B radiation and other stresses. Plant Physiol. 121: 479-488 (1999).
Campanoni P, Nick P. Auxin-dependent cell division and cell elongation. 1-Naphthaleneacetic acid and 2,4-dichlorophenoxyacetic acid activate different pathways. Plant Physiol. 137: 939-948 (2005).
Caniato FF, Guimaraes CT, Schaffert RE, Alves VM, Kochian LV, Borem A, Klein PE, Magalhaes JV. Genetic diversity for aluminum tolerance in sorghum. Theor. Appl. Genet. 114: 863-876 (2007).
Chen LS, Qi YP, Liu XH. Effects of aluminum on light energy utilization and photoprotective systems in citrus leaves. Ann. Bot. (Lond.) 96: 35-41 (2005).
Chen LS, Qi YP, Smith BR, Liu XH. Aluminum-induced decrease in CO2 assimilation in citrus seedlings is unaccompanied by decreased activities of key enzymes involved in CO2 assimilation. Tree Physiol. 25: 317-324 (2005).
Chen RF, Shen RF, Gu P, Dong XY, DU CW, Ma JF. Response of rice (Oryza sativa) with root surface iron plaque under aluminium stress. Ann. Bot. (Lond.) 98: 389-395 (2006).
Cho SW, Yoon HY. Photoaffinity labeling of brain glutamate dehydrogenase isoproteins with an azido-ADP. J. Biol. Chem. 274: 13948-13953 (1999).
Corrales I, Poschenrieder C, Barcelo J. Boron-induced amelioration of aluminium toxicity in a monocot and a dicot species. J. Plant Physiol. 165: 504-513 (2008).
Cramer MD, Shane MW, Lambers H. Physiological changes in white lupin associated with variation in root-zone CO2 concentration and cluster-root P mobilization. Plant Cell Environ. 28: 1203-1217 (2005).
Cumming JR, Ning J. Arbuscular mycorrhizal fungi enhance aluminium resistance of broomsedge (Andropogon virginicus L.). J. Exp. Bot. 54: 1447-1459 (2003).
Degenhardt J, Larsen PB, Howell SH, Kochian LV. Aluminum resistance in the Arabidopsis mutant alr-104 is caused by an aluminum-induced increase in rhizosphere pH. Plant Physiol. 117: 19-27 (1998).
Delhaize E, Craig S, Beaton CD, Bennet RJ, Jagadish VC, Randall PJ. Aluminum tolerance in wheat (Triticum aestivum L.). I. Uptake and distribution of aluminum in root apices. Plant Physiol. 103: 685-693 (1993).
Delhaize E, Gruber BD, Ryan PR. The roles of organic anion permeases in aluminium resistance and mineral nutrition. FEBS Lett. 581: 2255-2262 (2007).
Delhaize E, Hebb DM, Ryan PR. Expression of a Pseudomonas aeruginosa citrate synthase gene in tobacco is not associated with either enhanced citrate accumulation or efflux. Plant Physiol. 125: 2059-2067 (2001).
Delhaize E, Ryan PR, Hebb DM, Yamamoto Y, Sasaki T, Matsumoto H. Engineering high-level aluminum tolerance in barley with the ALMT1 gene. Proc. Natl. Acad. Sci. U.S.A. 101: 15249-15254 (2004).
Delhaize E, Ryan PR, Randall PJ. Aluminum tolerance in wheat (Triticum aestivum L.). II. Aluminum-stimulated excretion of malic acid from root apices. Plant Physiol. 103: 695-702 (1993).
Deng W, Luo K, Li D, Zheng X, Wei X, Smith W, Thammina C, Lu L, Li Y, Pei Y. Overexpression of an Arabidopsis magnesium transport gene, AtMGT1, in Nicotiana benthamiana confers Al tolerance. J. Exp. Bot. 57: 4235-4243 (2006).
Doncheva S, Amenos M, Poschenrieder C, Barcelo J. Root cell patterning: a primary target for aluminium toxicity in maize. J. Exp. Bot. 56: 1213-1220 (2005).
Dong B, Sang WL, Jiang X, Zhou JM, Kong FX, Hu W, Wang LS. Effects of aluminum on physiological metabolism and antioxidant system of wheat (Triticum aestivum L.). Chemosphere 47: 87-92 (2002).
Dong DF, Peng XX, Yan XL. Organic acid exudation induced by phosphorus deficiency and/or aluminium toxicity in two contrasting soybean genotypes. Physiol. Plant. 122: 190-199 (2004).
Durrett TP, Gassmann W, Rogers EE. The FRD3-mediated efflux of citrate into the root vasculature is necessary for efficient iron translocation. Plant Physiol. 144: 197-1205 (2007).
Ermolayev V, Weschke W, Manteuffel R. Comparison of Al-induced gene expression in sensitive and tolerant soybean cultivars. J. Exp. Bot. 54: 2745-2756 (2003).
Eticha D, Stass A, Horst WJ. Cell-wall pectin and its degree of methylation in the maize root-apex: significance for genotypic differences in aluminium resistance. Plant Cell Environ. 28: 1410-1420 (2005).
Eticha D, Stass A, Horst WJ. Localization of aluminium in the maize root apex: can morin detect cell wall-bound aluminium? J. Exp. Bot. 56: 1351-1357 (2005).
Ezaki B, Gardner RC, Ezaki Y, Matsumoto H. Expression of aluminum-induced genes in transgenic Arabidopsis plants can ameliorate aluminum stress and/or oxidative stress. Plant Physiol. 122: 657-666 (2000).
Ezaki B, Katsuhara M, Kawamura M, Matsumoto H. Different mechanisms of four aluminum (Al)-resistant transgenes for Al toxicity in Arabidopsis. Plant Physiol. 127: 918-927 (2001).
Ezaki B, Nagao E, Yamamoto Y, Nakashima S, Enomoto T. Wild plants, Andropogon virginicus L. and Miscanthus sinensis Anders, are tolerant to multiple stresses including aluminum, heavy metals and oxidative stresses. Plant Cell Rep. 27: 951-961 (2008).
Ezaki B, Sasaki K, Matsumoto H, Nakashima S. Functions of two genes in aluminium (Al) stress resistance: repression of oxidative damage by the AtBCB gene and promotion of efflux of Al ions by the NtGDI1gene. J. Exp. Bot. 56: 2661-2671 (2005).
Ezaki B, Suzuki M, Motoda H, Kawamura M, Nakashima S, Matsumoto H. Mechanism of gene expression of Arabidopsis glutathione S-transferase, AtGST1, and AtGST11 in response to aluminum stress. Plant Physiol. 134: 1672-1682 (2004).
Facanha AR, Okorokova-Facanha AL. Inhibition of phosphate uptake in corn roots by aluminum-fluoride complexes. Plant Physiol. 129: 1763-1772 (2002).
Feng Ma J, Hiradate S, Matsumoto H. High aluminum resistance in buckwheat. II. Oxalic acid detoxifies aluminum internally. Plant Physiol. 117: 753-759 (1998).
Francia E, Tacconi G, Crosatti C, Barabaschi D, Bulgarelli D, Dall'Aglio E, Vale G. Marker assisted selection in crop plants. Plant Cell Tissue Organ Cult. 82: 317-342 (2005).
Furukawa J, Yamaji N, Wang H, Mitani N, Murata Y, Sato K, Katsuhara M, Takeda K, Ma JF. An aluminum-activated citrate transporter in barley. Plant Cell Physiol. 48: 1081-1091 (2007).
Gabrielson KM, Cancel JD, Morua LF, Larsen PB. Identification of dominant mutations that confer increased aluminium tolerance through mutagenesis of the Al-sensitive Arabidopsis mutant, als3-1. J. Exp. Bot. 57: 943-951 (2006).
Gonzalez-Arias A, Amezaga I, Echeandia A, Onaindia M. Buffering capacity through cation leaching of Pinus radiata D. Don canopy. Plant Ecol. 149: 23-42 (2000).
Hamel F, Breton C, Houde M. Isolation and characterization of wheat aluminum-regulated genes: possible involvement of aluminum as a pathogenesis response elicitor. Planta 205: 531-538 (1998).
Hirashima M, Tanaka R, Tanaka A. Light-independent cell death induced by accumulation of pheophorbide a in Arabidopsis thaliana. Plant Cell Physiol. 50: 719-729 (2009).
Hoekenga OA, Vision TJ, Shaff JE, Monforte AJ, Lee GP, Howell SH, Kochian LV. Identification and characterization of aluminum tolerance loci in Arabidopsis (Landsberg erecta x Columbia) by quantitative trait locus mapping. A physiologically simple but genetically complex trait. Plant Physiol. 132: 936-948 (2003).
Hou X, Tong H, Selby J, Dewitt J, Peng X, He ZH. Involvement of a cell wall-associated kinase, WAKL4, in Arabidopsis mineral responses. Plant Physiol. 139: 1704-1716 (2005).
Huang CF, Yamaji N, Mitani N, Yano M, Nagamura Y, Ma JF. A bacterial-type ABC transporter is involved in aluminum tolerance in rice. Plant Cell 21: 655-667 (2009).
Huang JW, Grunes DL, Kochian LV. Aluminum effects on calcium (45Ca2+) translocation in aluminum-tolerant and aluminum-sensitive wheat (Triticum aestivum L.) cultivars. Differential responses of the root apex versus mature root regions. Plant Physiol. 102: 85-93 (1993).
Ikka T, Kobayashi Y, Iuchi S, Sakurai N, Shibata D, Kobayashi M, Koyama H. Natural variation of Arabidopsis thaliana reveals that aluminum resistance and proton resistance are controlled by different genetic factors. Theor. Appl. Genet. 115: 709-719 (2007).
Illes P, Schlicht M, Pavlovkin J, Lichtscheidl I, Baluska F, Ovecka M. Aluminium toxicity in plants: internalization of aluminium into cells of the transition zone in Arabidopsis root apices related to changes in plasma membrane potential, endosomal behaviour, and nitric oxide production. J. Exp. Bot. 57: 4201-4113 (2006).
Jansen S, Watanabe T, Smets E. Aluminium accumulation in leaves of 127 species in Melastomataceae, with comments on the order Myrtales. Ann. Bot. (Lond.) 90: 53-64 (2002).
Jian Zheng S, Feng Ma J, Matsumoto H. High aluminum resistance in buckwheat. I. Al-induced specific secretion of oxalic acid from root tips. Plant Physiol. 117: 745-751 (1998).
Jones DL, Blancaflor EB, Kochian LV, Gilroy S. Spatial coordination of aluminium uptake, production of reactive oxygen species, callose production and wall rigidification in maize roots. Plant Cell Environ. 29: 1309-1318 (2006).
Jones DL, Gilroy S, Larsen PB, Howell SH, Kochian LV. Effect of aluminum on cytoplasmic Ca2+ homeostasis in root hairs of Arabidopsis thaliana (L.). Planta 206: 378-387 (1998).
Jones DL, Kochian LV. Aluminum inhibition of the inositol 1,4,5-trisphosphate signal transduction pathway in wheat roots: a role in aluminum toxicity? Plant Cell 7: 1913-1922 (1995).
Kataoka T, Stekelenburg A, Nakanishi TM, Delhaize E, Ryan PR. Several lanthanides activate malate efflux from roots of aluminium-tolerant wheat. Plant Cell Environ. 25: 453-460 (2002).
Kelly CN, Morton JB, Cumming JR. Variation in aluminum resistance among arbuscular mycorrhizal fungi. Mycorrhiza 15: 193-201 (2005).
Khan MS, Tawaraya K, Sekimoto H, Koyama H, Kobayashi Y, Murayama T, Chuba M, Kambayashi M, Shiono Y, Uemura M, Ishikawa S, Wagatsuma T. Relative abundance of delta(5)-sterols in plasma membrane lipids of root-tip cells correlates with aluminum tolerance of rice. Physiol. Plant. 135: 73-83 (2009).
Kikui S, Sasaki T, Maekawa M, Miyao A, Hirochika H, Matsumoto H, Yamamoto Y. Physiological and genetic analyses of aluminium tolerance in rice, focusing on root growth during germination. J. Inorg.Biochem. 99: 1837-1844 (2005).
Kinraide TB. Ion fluxes considered in terms of membrane-surface electrical potentials. Aust. J. Plant Physiol. 28: 605-616 (2001).
Kinraide TB, Parker DR, Zobel RW. Organic acid secretion as a mechanism of aluminium resistance: a model incorporating the root cortex, epidermis, and the external unstirred layer. J. Exp. Bot. 56: 1853-1865 (2005).
Kobayashi Y, Furuta Y, Ohno T, Hara T, Koyama H. Quantitative trait loci controlling aluminium tolerance in two accessions of Arabidopsis thaliana (Landsberg erecta and Cape Verde Islands). Plant Cell Environ. 28: 1516-1524 (2005).
Kochian LV, Hoekenga OA, Pineros MA. How do crop plants tolerate acid soils? Mechanisms of aluminum tolerance and phosphorous efficiency. Annu. Rev. Plant Biol. 55: 459-493 (2004).
Kollmeier M, Dietrich P, Bauer CS, Horst WJ, Hedrich R. Aluminum activates a citrate-permeable anion channel in the aluminum-sensitive zone of the maize root apex. A comparison between an aluminum- sensitive and an aluminum-resistant cultivar. Plant Physiol. 126: 397-410 (2001).
Kollmeier M, Felle HH, Horst WJ. Genotypical differences in aluminum resistance of maize are expressed in the distal part of the transition zone. Is reduced basipetal auxin flow involved in inhibition of root elongation by aluminum? Plant Physiol. 122: 945-956 (2000).
Kovermann P, Meyer S, Hortensteiner S, Picco C, Scholz-Starke J, Ravera S, Lee Y, Martinoia E. The Arabidopsis vacuolar malate channel is a member of the ALMT family. Plant J. 52: 1169-1180 (2007).
Larsen PB, Cancel J, Rounds M, Ochoa V. Arabidopsis ALS1 encodes a root tip and stele localized half type ABC transporter required for root growth in an aluminum toxic environment. Planta 225: 1447-1458 (2007).
Larsen PB, Degenhardt J, Tai CY, Stenzler LM, Howell SH, Kochian LV. Aluminum-resistant Arabidopsis mutants that exhibit altered patterns of aluminum accumulation and organic acid release from roots. Plant Physiol. 117: 9-18 (1998).
Larsen PB, Geisler MJ, Jones CA, Williams KM, Cancel JD. ALS3 encodes a phloem-localized ABC transporter-like protein that is required for aluminum tolerance in Arabidopsis. Plant J. 41: 353-363 (2005).
Larsen PB, Tai CY, Kochian LV, Howell SH. Arabidopsis mutants with increased sensitivity to aluminum. Plant Physiol. 110: 743-751 (1996).
Li XF, Ma JF, Matsumoto H. Pattern of aluminum-induced secretion of organic acids differs between rye and wheat. Plant Physiol. 123: 1537-1544 (2000).
Liao H, Wan H, Shaff J, Wang X, Yan X, Kochian LV. Phosphorus and aluminum interactions in soybean in relation to aluminum tolerance. Exudation of specific organic acids from different regions of the intact root system. Plant Physiol. 141: 674-684 (2006).
Ligaba A, Katsuhara M, Ryan PR, Shibasaka M, Matsumoto H. The BnALMT1 and BnALMT2 genes from Brassica napus L. encode aluminum-activated malate transporters that enhance the aluminum resistance of plant cells. Plant Physiol. 142: 1294-1303 (2006).
Ligaba A, Shen H, Shibata K, Yamamoto Y, Tanakamaru S, Matsumoto H. The role of phosphorus in aluminium-induced citrate and malate exudation from rape (Brassica napus). Physiol. Plant. 120: 575-584 (2004).
Liu K, Li L, Luan S. An essential function of phosphatidylinositol phosphates in activation of plant shaker-type K+ channels. Plant J. 42: 433-443 (2005).
Liu K, Luan S. Internal aluminum block of plant inward K(+) channels. Plant Cell 13: 1453-1466 (2001).
Liu Q, Zheng S, Lin X. Plant physiological and molecular biological mechanism in response to aluminium toxicity. Ying Yong Sheng Tai Xue Bao 15: 1641-1649 (2004).
Lukaszewski KM, Blevins DG. Root growth inhibition in boron-deficient or aluminum-stressed squash may be a result of impaired ascorbate metabolism. Plant Physiol. 112: 1135-1140 (1996).
Ma HX, Bai GH, Carver BF, Zhou LL. Molecular mapping of a quantitative trait locus for aluminum tolerance in wheat cultivar Atlas 66. Theor. Appl. Genet. 112: 51-57 (2005).
Ma JF, Hiradate S. Form of aluminium for uptake and translocation in buckwheat. Planta 211: 355-360 (2000).
Ma JF, Nagao S, Huang CF, Nishimura M. Isolation and characterization of a rice mutant hypersensitive to Al. Plant Cell Physiol. 46: 1054-1061 (2005).
Ma JF, Nagao S, Sato K, Ito H, Furukawa J, Takeda K. Molecular mapping of a gene responsible for Al-activated secretion of citrate in barley. J. Exp. Bot. 55: 1335-1341 (2004).
Ma JF, Ryan PR, Delhaize E. Aluminium tolerance in plants and the complexing role of organic acids. Trends Plant Sci. 6: 273-278 (2001).
Ma JF, Taketa S, Yang ZM. Aluminum tolerance genes on the short arm of chromosome 3R are linked to organic acid release in Triticale. Plant Physiol. 122: 687-694 (2000).
Magalhaes JV. Aluminum tolerance genes are conserved between monocots and dicots. Proc. Natl. Acad. Sci. U.S.A. 103: 9749-9750 (2006).
Magalhaes JV, Liu J, Guimaraes CT, Lana UG, Alves VM, Wang YH, Schaffert RE, Hoekenga OA, Pineros MA, Shaff JE, Klein PE, Carneiro NP, Coelho CM, Trick HN, Kochian LV. A gene in the multidrug and toxic compound extrusion (MATE) family confers aluminum tolerance in sorghum. Nat. Genet. 39: 1156-1161 (2007).
Mao C, Yi K, Yang L, Zheng B, Wu Y, Liu F, Wu P. Identification of aluminium-regulated genes by cDNA-AFLP in rice (Oryza sativa L.): aluminium-regulated genes for the metabolism of cell wall components. J. Exp. Bot. 55: 137-143 (2004).
Matos M, Camacho MV, Perez-Flores V, Pernaute B, Pinto-Carnide O, Benito C. A new aluminum tolerance gene located on rye chromosome arm 7RS. Theor. Appl. Genet. 111: 360-369 (2005).
McCluskey J, Herdman L, Skene KR. Iron deficiency induces changes in metabolism of citrate in lateral roots and cluster roots of Lupinus albus. Physiol. Plant. 121: 586-594 (2004).
Meyer A, Held M, Schmid A, Kohler HP, Witholt B. Synthesis of 3-tert-butylcatechol by an engineered monooxygenase. Biotechnol. Bioeng. 81: 518-524 (2003).
Meyerhoff O, Muller K, Roelfsema MR, Latz A, Lacombe B, Hedrich R, Dietrich P, Becker D. AtGLR3.4, a glutamate receptor channel-like gene is sensitive to touch and cold. Planta 222: 418-427 (2005).
Miftahudin, Chikmawati T, Ross K, Scoles GJ, Gustafson JP. Targeting the aluminum tolerance gene Alt3 region in rye, using rice/rye micro-colinearity. Theor. Appl. Genet. 110: 906-913 (2005).
Milla MA, Butler E, Huete AR, Wilson CF, Anderson O, Gustafson JP. Expressed sequence tag-based gene expression analysis under aluminum stress in rye. Plant Physiol. 130: 1706-1716 (2002).
Moller M, Alchanatis V, Cohen Y, Meron M, Tsipris J, Naor A, Ostrovsky V, Sprintsin M, Cohen S. Use of thermal and visible imagery for estimating crop water status of irrigated grapevine. J. Exp. Bot. 58: 827-838 (2007).
Morre DJ, Brightman AO, Barr R, Davidson M, Crane FL. NADH oxidase activity of plasma membranes of soybean hypocotyls is activated by guanine nucleotides. Plant Physiol. 102: 595-602 (1993).
Moyer-Henry K, Silva I, Macfall J, Johannes E, Allen N, Goldfarb B, Rufty T. Accumulation and localization of aluminium in root tips of loblolly pine seedlings and the associated ectomycorrhiza Pisolithus tinctorius. Plant Cell Environ. 28: 111-120 (2005).
Murphy AS, Eisinger WR, Shaff JE, Kochian LV, Taiz L. Early copper-induced leakage of K(+) from Arabidopsis seedlings is mediated by ion channels and coupled to citrate efflux. Plant Physiol. 121: 1375-1382 (1999).
Nagasaka S, Nishizawa NK, Negishi T, Satake K, Mori S, Yoshimura E. Novel iron-storage particles may play a role in aluminum tolerance of Cyanidium caldarium. Planta 215: 399-404 (2002).
Nguyen VA, Senoo K, Mishima T, Hisamatsu M. Multiple tolerance of Rhodotorula glutinis R-1 to acid, aluminum ion and manganese ion, and its unusual ability of neutralizing acidic medium. J. Biosci. Bioeng. 92: 366-371 (2001).
Nichol BE, Oliveira LA, Glass A, Siddiqi MY. The effects of aluminum on the influx of calcium, potassium, ammonium, nitrate, and phosphate in an aluminum-sensitive cultivar of barley (Hordeum vulgare L.). Plant Physiol. 101: 1263-1266 (1993).
Nimptsch J, Wunderlin DA, Dollan A, Pflugmacher S. Antioxidant and biotransformation enzymes in Myriophyllum quitense as biomarkers of heavy metal exposure and eutrophication in Suquia River basin (Cordoba, Argentina). Chemosphere 61: 147-157 (2005).
Ning J, Cumming JR. Arbuscular mycorrhizal fungi alter phosphorus relations of broomsedge (Andropogon virginicus L.) plants. J. Exp. Bot. 52: 1883-1891 (2001).
Osawa H, Kojima K. Citrate-release-mediated aluminum resistance is coupled to the inducible expression of mitochondrial citrate synthase gene in Paraserianthes falcataria. Tree Physiol. 26: 565-574 (2006).
Osawa H, Matsumoto H. Possible involvement of protein phosphorylation in aluminum-responsive malate efflux from wheat root apex. Plant Physiol. 126: 411-420 (2001).
Osawa H, Matsumoto H. Cytotoxic thio-malate is transported by both an aluminum-responsive malate efflux pathway in wheat and the MAE1 malate permease in Schizosaccharomyces pombe. Planta 224: 462-471 (2006).
Osawa H, Matsumoto H. Aluminium triggers malate-independent potassium release via ion channels from the root apex in wheat. Planta 215: 405-412 (2002).
Pecsvaradi A, Nagy Z, Varga A, Vashegyi A, Labadi I, Galbacs G, Zsoldos F. Chloroplastic glutamine synthetase is activated by direct binding of aluminium. Physiol. Plant. 135: 43-50 (2009).
Pineros MA, Cancado GM, Kochian LV. Novel properties of the wheat aluminum tolerance organic acid transporter (TaALMT1) revealed by electrophysiological characterization in Xenopus oocytes: functional and structural implications. Plant Physiol. 147: 2131-2146 (2008).
Pineros MA, Cancado GM, Maron LG, Lyi SM, Menossi M, Kochian LV. Not all ALMT1-type transporters mediate aluminum-activated organic acid responses: the case of ZmALMT1 - an anion-selective transporter. Plant J. 53: 352-367 (2008).
Pineros MA, Kochian LV. A patch-clamp study on the physiology of aluminum toxicity and aluminum tolerance in maize. Identification and characterization of Al(3+)-induced anion channels. Plant Physiol. 125: 292-305 (2001).
Pineros MA, Magalhaes JV, Carvalho Alves VM, Kochian LV. The physiology and biophysics of an aluminum tolerance mechanism based on root citrate exudation in maize. Plant Physiol. 129: 1194-1206 (2002).
Pineros MA, Shaff JE, Manslank HS, Alves VM, Kochian LV. Aluminum resistance in maize cannot be solely explained by root organic acid exudation. A comparative physiological study. Plant Physiol. 137: 231-241 (2005).
Plieth C, Sattelmacher B, Hansen UP, Knight MR. Low-pH-mediated elevations in cytosolic calcium are inhibited by aluminium: a potential mechanism for aluminium toxicity. Plant J. 18: 643-650 (1999).
Qifu MA, Rengel Z, Kuo J. Aluminium toxicity in rye (Secale cereale): root growth and dynamics of cytoplasmic Ca2+ in intact root tips. Ann. Bot. (Lond.) 89: 241-244 (2002).
Ramos J, Naya L, Gay M, Abian J, Becana M. Functional characterization of an unusual phytochelatin synthase, LjPCS3, of Lotus japonicus. Plant Physiol. 148: 536-545 (2008).
Ramos-Diaz A, Brito-Argaez L, Munnik T, Hernandez-Sotomayor SM. Aluminum inhibits phosphatidic acid formation by blocking the phospholipase C pathway. Planta 225: 393-401 (2007).
Rangel AF, Rao IM, Horst WJ. Intracellular distribution and binding state of aluminum in root apices of two common bean (Phaseolus vulgaris) genotypes in relation to Al toxicity. Physiol. Plant. 135: 162-173 (2009).
Rangel AF, Rao IM, Horst WJ. Spatial aluminium sensitivity of root apices of two common bean (Phaseolus vulgaris L.) genotypes with contrasting aluminium resistance. J. Exp. Bot. 58: 3895-3904 (2007).
Ratcliffe RG, Roscher A. Prospects for in vivo NMR methods in xenobiotic research in plants. Biodegradation 9: 411-422 (1998).
Rhodes D, Nadolska-Orczyk A. Plant stress physiology. ENCYCLOPEDIA OF LIFE SCIENCES Nature Publishing Group www.els.net (2001).
Richards KD, Schott EJ, Sharma YK, Davis KR, Gardner RC. Aluminum induces oxidative stress genes in Arabidopsis thaliana. Plant Physiol. 116: 409-418 (1998).
Richards KD, Snowden KC, Gardner RC. Wali6 and wali7. Genes induced by aluminum in wheat (Triticum aestivum L.) roots. Plant Physiol. 105: 1455-1456 (1994).
Rout GR, Samantaray S, Das P. Aluminium toxicity in plants: a review. Agronomie 21: 3-21 (2001).
Ruuska SA, Schwender J, Ohlrogge JB. The capacity of green oilseeds to utilize photosynthesis to drive biosynthetic processes. Plant Physiol. 136: 2700-2709 (2004).
Ryan PR, Delhaize E, Jones DL. Function and mechanism of organic anion exudation from plant roots. Annu. Rev. Plant Physiol. Plant Mol. Biol. 52: 527-560 (2001).
Ryan PR, Kochian LV. Interaction between aluminum toxicity and calcium uptake at the root apex in near-isogenic lines of wheat (Triticum aestivum L.) differing in aluminum tolerance. Plant Physiol. 102: 975-982 (1993).
Ryan PR, Liu Q, Sperling P, Dong B, Franke S, Delhaize E. A higher plant {delta}8 sphingolipid desaturase with a preference for (z)-isomer formation confers aluminum tolerance to yeast and plants. Plant Physiol. 144: 1968-1977 (2007).
Ryan PR, Raman H, Gupta S, Horst WJ, Delhaize E. A second mechanism for aluminum resistance in wheat relies on the constitutive efflux of citrate from roots. Plant Physiol. 149: 340-351 (2009).
Sasaki T, Yamamoto Y, Ezaki B, Katsuhara M, Ahn SJ, Ryan PR, Delhaize E, Matsumoto H. A wheat gene encoding an aluminum-activated malate transporter. Plant J. 37: 645-653 (2004).
Savenstrand H, Brosche M, Angehagen M, Strid A. Molecular markers for ozone stress isolated by suppression subtractive hybridization: specificity of gene expression and identification of a novel stress-regulated gene. Plant Cell Environ. 23: 689-700 (2000).
Sawaki Y, Iuchi S, Kobayashi Y, Kobayashi Y, Ikka T, Sakurai N, Fujita M, Shinozaki K, Shibata D, Kobayashi M, Koyama H. STOP1 regulates multiple genes that protect Arabidopsis from proton and aluminum toxicities. Plant Physiol. 150: 281-294 (2009).
Schwartzwnberg Kv, Hahn H. Nutritive stress and cytokinin status in Norway spruce seedlings (Picea abies L. Karst.). Ann. For. Sci. 62: 449-453 (2005).
Sharma P, Dubey RS. Modulation of nitrate reductase activity in rice seedlings under aluminium toxicity and water stress: role of osmolytes as enzyme protectant. J. Plant Physiol. 162: 854-864 (2005).
Sharma P, Dubey RS. Involvement of oxidative stress and role of antioxidative defense system in growing rice seedlings exposed to toxic concentrations of aluminum. Plant Cell Rep. 26: 2027-2038 (2007).
Shen H, He LF, Sasaki T, Yamamoto Y, Zheng SJ, Ligaba A, Yan XL, Ahn SJ, Yamaguchi M, Hideo S, Matsumoto H. Citrate secretion coupled with the modulation of soybean root tip under aluminum stress. Up-regulation of transcription, translation, and threonine-oriented phosphorylation of plasma membrane H+-ATPase. Plant Physiol. 138: 287-296 (2005).
Shen H, Yan XL, Cai KZ, Matsumoto H. Differential Al resistance and citrate secretion in the tap and basal roots of common bean seedlings. Physiol. Plant. 121: 595-603 (2004).
Shen R, Ma F, Kyo M, Iwashita T. Compartmentation of aluminium in leaves of an Al-accumulator, Fagopyrum esculentum Moench. Planta 215: 394-398 (2002).
Silva IR, Smyth TJ, Moxley DF, Carter TE, Allen NS, Rufty TW. Aluminum accumulation at nuclei of cells in the root tip. Fluorescence detection using lumogallion and confocal laser scanning microscopy. Plant Physiol. 123: 543-552 (2000).
Silva IR, Smyth TJ, Raper CD, Carter TE, Rufty TW. Differential aluminum tolerance in soybean: An evaluation of the role of organic acids. Physiol. Plant. 112: 200-210 (2001).
Sivaguru M, Baluska F, Volkmann D, Felle HH, Horst WJ. Impacts of aluminum on the cytoskeleton of the maize root apex. Short-term effects on the distal part of the transition zone. Plant Physiol. 119: 1073-1082 (1999).
Sivaguru M, Ezaki B, He ZH, Tong H, Osawa H, Baluska F, Volkmann D, Matsumoto H. Aluminum-induced gene expression and protein localization of a cell wall-associated receptor kinase in Arabidopsis. Plant Physiol. 132: 2256-2266 (2003).
Sivaguru M, Fujiwara T, Samaj J, Baluska F, Yang Z, Osawa H, Maeda T, Mori T, Volkmann D, Matsumoto H. Aluminum-induced 1-->3-beta-D-glucan inhibits cell-to-cell trafficking of molecules through plasmodesmata. A new mechanism of aluminum toxicity in plants. Plant Physiol. 124: 991-1006 (2000).
Snowden KC, Gardner RC. Five genes induced by aluminum in wheat (Triticum aestivum L.) roots. Plant Physiol. 103: 855-861 (1993).
Stass A, Wang Y, Eticha D, Horst WJ. Aluminium rhizotoxicity in maize grown in solutions with Al3+ or Al(OH)4- as predominant solution Al species. J. Exp. Bot. 57: 4033-4042 (2006).
Stoutjesdijk PA, Sale PW, Larkin PJ. Possible involvement of condensed tannins in aluminium tolerance of Lotus pedunculatus. Aust. J. Plant Physiol. 28: 1063-1074 (2001).
Struys-Ponsar C, Guillard O, van den Bosch de Aguilar P. Effects of aluminum exposure on glutamate metabolism: a possible explanation for its toxicity. Exp. Neurol. 163: 157-164 (2000).
Sun QB, Shen RF, Zhao XQ, Chen RF, Dong XY. Phosphorus enhances Al resistance in Al-resistant Lespedeza bicolor but not in Al-sensitive L. cuneata under relatively high Al stress. Ann. Bot. (Lond.) 102: 795-804 (2008).
Tabuchi A, Kikui S, Matsumoto H. Differential effects of aluminium on osmotic potential and sugar accumulation in the root cells of Al-resistant and Al-sensitive wheat. Physiol. Plant. 120: 106-112 (2004).
Tamas L, Budikova S, Huttova J, Mistrik I, Simonovicova M, Siroka B. Aluminum-induced cell death of barley-root border cells is correlated with peroxidase- and oxalate oxidase-mediated hydrogen peroxide production. Plant Cell Rep. 24: 189-194 (2005).
Tang H, Zheng YL, He LY, Li JS. Isolation of maize genes related to aluminum tolerance. Zhi Wu Sheng Li Yu Fen Zi Sheng Wu Xue Xue Bao 31: 507-514 (2005).
Taylor GJ, McDonald-Stephens JL, Hunter DB, Bertsch PM, Elmore D, Rengel Z, Reid RJ. Direct measurement of aluminum uptake and distribution in single cells of Chara corallina. Plant Physiol. 123: 987-996 (2000).
Vazquez MD, Poschenrieder C, Corrales I, Barcelo J. Change in apoplastic aluminum during the initial growth response to aluminum by roots of a tolerant maize variety. Plant Physiol. 119: 435-444 (1999).
Wang BL, Shen JB, Zhang WH, Zhang FS, Neumann G. Citrate exudation from white lupin induced by phosphorus deficiency differs from that induced by aluminum. New Phytol. 176: 581-589 (2007).
Wang Y, Stass A, Horst WJ. Apoplastic binding of aluminum is involved in silicon-induced amelioration of aluminum toxicity in maize. Plant Physiol. 136: 3762-3770 (2004).
Watt DA. Aluminium-responsive genes in sugarcane: identification and analysis of expression under oxidative stress. J. Exp. Bot. 54: 1163-1174 (2003).
Weber AP, Oesterhelt C, Gross W, Brautigam A, Imboden LA, Krassovskaya I, Linka N, Truchina J, Schneidereit J, Voll H, Voll LM, Zimmermann M, Jamai A, Riekhof WR, Yu B, Garavito RM, Benning C. EST-analysis of the thermo-acidophilic red microalga Galdieria sulphuraria reveals potential for lipid A biosynthesis and unveils the pathway of carbon export from rhodoplasts. Plant Mol. Biol. 55: 17-32 (2004).
Wight CP, Kibite S, Tinker NA, Molnar SJ. Identification of molecular markers for aluminium tolerance in diploid oat through comparative mapping and QTL analysis. Theor. Appl. Genet. 112: 222-231 (2006).
Yamaguchi M, Sasaki T, Sivaguru M, Yamamoto Y, Osawa H, Ahn SJ, Matsumoto H. Evidence for the plasma membrane localization of Al-activated malate transporter (ALMT1). Plant Cell Physiol. 46: 812-816 (2005).
Yamamoto Y, Kobayashi Y, Devi SR, Rikiishi S, Matsumoto H. Aluminum toxicity is associated with mitochondrial dysfunction and the production of reactive oxygen species in plant cells. Plant Physiol. 128: 63-72 (2002).
Yamamoto Y, Kobayashi Y, Matsumoto H. Lipid peroxidation is an early symptom triggered by aluminum, but not the primary cause of elongation inhibition in pea roots. Plant Physiol. 125: 199-208 (2001).
Yamazaki J, Miyoshi K. In vitro asymbiotic germination of immature seed and formation of protocorm by Cephalanthera falcata (Orchidaceae). Ann. Bot. (Lond.) 98: 1197-1206 (2006).
Yang JL, You JF, Li YY, Wu P, Zheng SJ. Magnesium enhances aluminum-induced citrate secretion in rice bean roots (Vigna umbellata) by restoring plasma membrane H+-ATPase activity. Plant Cell Physiol. 48: 66-73 (2007).
Yang JL, Zhang L, Li YY, You JF, Wu P, Zheng SJ. Citrate transporters play a critical role in aluminium-stimulated citrate efflux in rice bean (Vigna umbellata) roots. Ann. Bot. (Lond.) 97: 579-584 (2006).
Yang JL, Zheng SJ, He YF, Matsumoto H. Aluminium resistance requires resistance to acid stress: a case study with spinach that exudes oxalate rapidly when exposed to Al stress. J. Exp. Bot. 56: 1197-1203 (2005).
Yang JL, Zheng SJ, He YF, You JF, Zhang L, Yu XH. Comparative studies on the effect of a protein-synthesis inhibitor on aluminium-induced secretion of organic acids from Fagopyrum esculentum Moench and Cassia tora L. roots. Plant Cell Environ. 29: 240-246 (2006).
Yang Q, Wang Y, Zhang J, Shi W, Qian C, Peng X. Identification of aluminum-responsive proteins in rice roots by a proteomic approach: cysteine synthase as a key player in Al response. Proteomics 7: 737-749 (2007).
Yang ZM, Wang J, Wang SH, Xu LL. Salicylic acid-induced aluminum tolerance by modulation of citrate efflux from roots of Cassia tora L. Planta 217: 168-174 (2003).
Yano K, Takaki M. Mycorrhizal alleviation of acid soil stress in the sweet potato (Ipomoea batatas). Soil Biol. Biochem. 37: 1569-1572 (2005).
You JF, Yang ZM. Organic acid secretion and its detoxification mechanism in plant roots under aluminum stress. Zhi Wu Sheng Li Yu Fen Zi Sheng Wu Xue Xue Bao 31: 111-118 (2005).
Zatta P, Lain E, Cagnolini C. Effects of aluminum on activity of Krebs cycle enzymes and glutamate dehydrogenase in rat brain homogenate. Eur. J. Biochem. 267: 3049-3055 (2000).
Zhang J, He Z, Tian H, Zhu G, Peng X. Identification of aluminium-responsive genes in rice cultivars with different aluminium sensitivities. J. Exp. Bot. 58: 2269-2278 (2007).
Zhang WH, Rengel Z. Aluminium induces an increase in cytoplasmic calcium in intact wheat root apical cells. Aust. J. Plant Physiol. 26: 401-409 (1999).
Zheng K, Pan JW, Ye L, Fu Y, Peng HZ, Wan BY, Gu Q, Bian HW, Han N, Wang JH, Kang B, Pan JH, Shao HH, Wang WZ, Zhu MY. Programmed cell death-involved aluminum toxicity in yeast alleviated by antiapoptotic members with decreased calcium signals. Plant Physiol. 143: 38-49 (2007).
Zheng SJ, Yang JL, He YF, Yu XH, Zhang L, You JF, Shen RF, Matsumoto H. Immobilization of aluminum with phosphorus in roots is associated with high aluminum resistance in buckwheat. Plant Physiol. 138: 297-303 (2005).
Zhou S, Sauvé R, Thannhauser TW. Proteome changes induced by aluminium stress in tomato roots. J. Exp. Bot. 60: 1849-1857 (2009).
Number of references = 181
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