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N Use By Plants
Nitrate Assimilation
Ammonia Assimilation
Glu, Gln, Asn, Gly, Ser
Aminotransferases
Asp, Ala, GABA
Val, Leu, Ileu, Thr, Lys
Pro, Arg, Orn
Polyamines
Non-protein AAs
Alkaloids
Sulfate Assimilation
Cys, Met, AdoMet, ACC
His, Phe, Tyr, Tryp
Secondary Products
Onium Compounds
Enzymes
Methods
Simulation
References
HORT640 - Metabolic Plant Physiology

References, sulfate uptake or sulphate uptake

Ahmad A, Khan I, Anjum NA, Abrol YP, Iqbal M. Role of sulphate transporter systems in sulphur efficiency of mustard genotypes. Plant Sci. 169: 842-846 (2005).

Allen JW, Shachar-Hill Y. Sulfur transfer through an arbuscular mycorrhiza. Plant Physiol. 149: 549-560 (2009).

Aslam M, Harbit KB, Huffaker RC. Comparative effects of selenite and selenate on nitrate assimilation in barley seedlings. Plant Cell Environ. 13: 773-782 (1990).

Banciu H, Sorokin DY, Kleerebezem R, Muyzer G, Galinski EA, Kuenen JG. Growth kinetics of haloalkaliphilic, sulfur-oxidizing bacterium Thioalkalivibrio versutus strain ALJ 15 in continuous culture. Extremophiles 8: 185-192 (2004).

Bartoli CG, Pastori GM, Foyer CH. Ascorbate biosynthesis in mitochondria is linked to the electron transport chain between complexes III and IV. Plant Physiol. 123: 335-344 (2000).

Bell CI, Clarkson DT, Cram WJ. Partitioning and redistribution of sulfur during S-stress in Macroptilium atropurpureum cv Siratro. J. Exp. Bot. 46: 73-81 (1995).

Bell CI, Clarkson DT, Cram WJ. Sulfate supply and its regulation of transport in roots of a tropical legume Macroptilium atropurpureum cv Siratro. J. Exp. Bot. 46: 65-71 (1995).

Bouarab K, Potin P, Correa J, Kloareg B. Sulfated oligosaccharides mediate the interaction between a marine red alga and its green algal pathogenic endophyte. Plant Cell 11: 1635-1650 (1999).

Buchner P, Stuiver CE, Westerman S, Wirtz M, Hell R, Hawkesford MJ, De Kok LJ. Regulation of sulfate uptake and expression of sulfate transporter genes in Brassica oleracea as affected by atmospheric H2S and pedospheric sulfate nutrition. Plant Physiol. 136: 3396-3408 (2004).

Buchner P, Takahashi H, Hawkesford MJ. Plant sulphate transporters: co-ordination of uptake, intracellular and long-distance transport. J. Exp. Bot. 55: 1765-1773 (2004).

Chen HC, Melis A. Localization and function of SulP, a nuclear-encoded chloroplast sulfate permease in Chlamydomonas reinhardtii. Planta 220: 198-210 (2004).

Chiou TJ. The role of microRNAs in sensing nutrient stress. Plant Cell Environ. 30: 323-332 (2007).

Coppee JY, Auger S, Turlin E, Sekowska A, Le Caer JP, Labas V, Vagner V, Danchin A, Martin-Verstraete I. Sulfur-limitation-regulated proteins in Bacillus subtilis: a two-dimensional gel electrophoresis study. Microbiology 147: 1631-1640 (2001).

Datko AH, Mudd SH. Sulfate uptake and its regulation in Lemna paucicostata Hegelm 6746. Plant Physiol. 75: 466-473 (1984).

De Kok LJ, Stuiver CEE, Rubinigg M, Westerman S, Grill D. Impact of atmospheric sulfur deposition on sulfur metabolism in plants: H2S as sulfur source for sulfur deprived Brassica oleracea L. Bot. Acta 110: 411-419 (1997).

Delgado MJ, Tresierra-Ayala A, Talbi C, Bedmar EJ. Functional characterization of the Bradyrhizobium japonicum modA and modB genes involved in molybdenum transport. Microbiology 152: 199-207 (2006).

Dominguez MJ, Gutierrez F, Leon R, Vilchez C, Vega JM, Vigara J. Cadmium increases the activity levels of glutamate dehydrogenase and cysteine synthase in Chlamydomonas reinhardtii. Plant Physiol. Biochem. 41: 828-832 (2003).

Durenkamp M, De Kok LJ. Impact of pedospheric and atmospheric sulphur nutrition on sulphur metabolism of Allium cepa L., a species with a potential sink capacity for secondary sulphur compounds. J. Exp. Bot. 55: 1821-1830 (2004).

Durenkamp M, De Kok LJ, Kopriva S. Adenosine 5'-phosphosulphate reductase is regulated differently in Allium cepa L. and Brassica oleracea L. upon exposure to H2S. J. Exp. Bot. 58: 1571-1579 (2007).

Ernst WH. Sulfur metabolism in higher plants: potential for phytoremediation. Biodegradation 9: 311-318 (1998).

Fouchard S, Pruvost J, Degrenne B, Titica M, Legrand J. Kinetic modeling of light limitation and sulfur deprivation effects in the induction of hydrogen production with Chlamydomonas reinhardtii: Part I. Model development and parameter identification. Biotechnol. Bioeng. 102: 232-245 (2009).

Franklin JA, Zwiazek JJ. Ion uptake in Pinus banksiana treated with sodium chloride and sodium sulphate. Physiol. Plant. 120: 482-490 (2004).

Gerhardt PN, Smith LT, Smith GM. Sodium-driven, osmotically activated glycine betaine transport in Listeria monocytogenes membrane vesicles. J. Bacteriol. 178: 6105-6109 (1996).

Gerhardt PN, Tombras Smith L, Smith GM. Osmotic and chill activation of glycine betaine porter II in Listeria monocytogenes membrane vesicles. J. Bacteriol. 182: 2544-2550 (2000).

Gharieb MM, Gadd GM. The kinetics of 75[Se]-selenite uptake by Saccharomyces cerevisiae and the vacuolization response to high concentrations. Mycol. Res. 108: 1415-1422 (2004).

Gorbi G, Zanni C, Corradi MG. Sulfur starvation and chromium tolerance in Scenedesmus acutus: a possible link between metal tolerance and the regulation of sulfur uptake/assimilation processes. Aquat. Toxicol. 84: 457-464 (2007).

Halperin SJ, Kochian LV, Lynch JP. Salinity stress inhibits calcium loading into the xylem of excised barley (Hordeum vulgare) roots. New Phytol. 135: 419-427 (1997).

Hawkesford MJ, De Kok LJ. Managing sulphur metabolism in plants. Plant Cell Environ. 29: 382-395 (2006).

Herschbach C, van Der Zalm E, Schneider A, Jouanin L, De Kok LJ, Rennenberg H. Regulation of sulfur nutrition in wild-type and transgenic poplar over-expressing gamma-glutamylcysteine synthetase in the cytosol as affected by atmospheric H(2)S. Plant Physiol. 124: 461-474 (2000).

Hesse H, Nikiforova V, Gakiere B, Hoefgen R. Molecular analysis and control of cysteine biosynthesis: integration of nitrogen and sulphur metabolism. J. Exp. Bot. 55: 1283-1292 (2004).

Hofgen R, Kreft O, Willmitzer L, Hesse H. Manipulation of thiol contents in plants. Amino Acids 20: 291-299 (2001).

Hopkins L, Parmar S, Blaszczyk A, Hesse H, Hoefgen R, Hawkesford MJ. O-Acetylserine and the regulation of expression of genes encoding components for sulfate uptake and assimilation in potato. Plant Physiol. 138: 433-440 (2005).

Howarth JR, Fourcroy P, Davidian JC, Smith FW, Hawkesford MJ. Cloning of two contrasting high-affinity sulfate transporters from tomato induced by low sulfate and infection by the vascular pathogen Verticillium dahliae. Planta 218: 58-64 (2003).

Kataoka T, Hayashi N, Yamaya T, Takahashi H. Root-to-shoot transport of sulfate in Arabidopsis. Evidence for the role of SULTR3;5 as a component of low-affinity sulfate transport system in the root vasculature. Plant Physiol. 136: 4198-4204 (2004).

Kataoka T, Watanabe-Takahashi A, Hayashi N, Ohnishi M, Mimura T, Buchner P, Hawkesford MJ, Yamaya T, Takahashi H. Vacuolar sulfate transporters are essential determinants controlling internal distribution of sulfate in Arabidopsis. Plant Cell 16: 2693-2704 (2004).

Kertesz MA, Mirleau P. The role of soil microbes in plant sulphur nutrition. J. Exp. Bot. 55: 1939-1945 (2004).

Kohzu A, Miyajima T, Tateishi T, Watanabe T, Takahashi M, Wada E. Dynamics of 15N natural abundance in wood-decomposing fungi and their ecophysiological implications. Isotopes Environ. Health Stud. 43: 83-94 (2007).

Kopriva S, Suter M, Von Ballmoos P, Hesse H, Krahenbuhl U, Rennenberg H, Brunold C. Interaction of sulfate assimilation with carbon and nitrogen metabolism in Lemna minor. Plant Physiol. 130: 1406-1413 (2002).

Kronzucker HJ, Siddiqi MY, Glass ADM. Compartmentation and flux characteristics of nitrate in spruce. Planta 196: 674-682 (1995).

Kruse J, Kopriva S, Hansch R, Krauss GJ, Mendel RR, Rennenberg H. Interaction of sulfur and nitrogen nutrition in tobacco (Nicotiana tabacum) plants: significance of nitrogen source and root nitrate reductase. Plant Biol. (Stuttg.) 9: 638-646 (2007).

Lappartient AG, Vidmar JJ, Leustek T, Glass AD, Touraine B. Inter-organ signaling in plants: regulation of ATP sulfurylase and sulfate transporter genes expression in roots mediated by phloem-translocated compound. Plant J. 18: 89-95 (1999).

Laskin A, Gaspar DJ, Wang W, Hunt SW, Cowin JP, Colson SD, Finlayson-Pitts BJ.. Reactions at interfaces as a source of sulfate formation in sea-salt particles. Science 301: 340-344 (2003).

Leustek T, Martin MN, Bick JA, Davies JP. Pathways and regulation of sulfur metabolism revealed through molecular and genetic studies. Annu. Rev. Plant Physiol. Plant Mol. Biol. 51: 141-165 (2000).

Lin SL, Wu L. Effects of copper concentration on mineral nutrient uptake and copper accumulation in protein of copper-tolerant and nontolerant Lotus purshianus L. Ecotoxicol. Environ. Saf. 29: 214-228 (1994).

Llamas A, Kalakoutskii KL. Molybdenum cofactor amounts in Chlamydomonas reinhardtii depend on the Nit5 gene function related to molybdate transport. Plant Cell Environ. 23: 1247-1255 (2000).

Lyi SM, Heller LI, Rutzke M, Welch RM, Kochian LV, Li L. Molecular and biochemical characterization of the selenocysteine Se-methyltransferase gene and Se-methylselenocysteine synthesis in broccoli. Plant Physiol. 138: 409-420 (2005).

Maruyama-Nakashita A, Inoue E, Watanabe-Takahashi A, Yamaya T, Takahashi H. Transcriptome profiling of sulfur-responsive genes in Arabidopsis reveals global effects of sulfur nutrition on multiple metabolic pathways. Plant Physiol. 132: 597-605 (2003).

Maruyama-Nakashita A, Nakamura Y, Tohge T, Saito K, Takahashi H. Arabidopsis SLIM1 is a central transcriptional regulator of plant sulfur response and metabolism. Plant Cell 18: 3235-3251 (2006).

Maruyama-Nakashita A, Nakamura Y, Yamaya T, Takahashi H. Regulation of high-affinity sulphate transporters in plants: towards systematic analysis of sulphur signalling and regulation. J. Exp. Bot. 55: 1843-1849 (2004).

Maruyama-Nakashita A, Nakamura Y, Yamaya T, Takahashi H. A novel regulatory pathway of sulfate uptake in Arabidopsis roots: implication of CRE1/WOL/AHK4-mediated cytokinin-dependent regulation. Plant J. 38: 779-789 (2004).

Marzluf GA. Molecular genetics of sulfur assimilation in filamentous fungi and yeast. Annu. Rev. Microbiol. 51: 73-96 (1997).

Monaghan JM, Scrimgeour CM, Stein WM, Zhao FJ, Evans EJ. Sulphur accumulation and redistribution in wheat (Triticum aestivum): a study using stable sulphur isotope ratios as a tracer system. Plant Cell Environ. 22: 831-839 (1999).

Morard P, Lacoste L, Silvestre J. Effect of oxygen deficiency on mineral nutrition of excised tomato roots. J. Plant Nutr. 27: 613-626 (2004).

Morard P, Silvestre J, Lacoste L, Caumes E, Lamaze T. Nitrate uptake and nitrite release by tomato roots in response to anoxia. J. Plant Physiol. 161: 855-865 (2004).

Mosulen S, Dominguez MJ, Vigara J, Vilchez C, Guiraum A, Vega JM. Metal toxicity in Chlamydomonas reinhardtii. Effect on sulfate and nitrate assimilation. Biomol. Eng. 20: 199-203 (2003).

Mouncey NJ, Mitchenall LA, Pau RN. Mutational analysis of genes of the mod locus involved in molybdenum transport, homeostasis, and processing in Azotobacter vinelandii. J. Bacteriol. 177: 5294-5302 (1995).

Nagasaka S, Takahashi M, Nakanishi-Itai R, Bashir K, Nakanishi H, Mori S, Nishizawa NK. Time course analysis of gene expression over 24 hours in Fe-deficient barley roots. Plant Mol. Biol. 69: 621-631 (2009).

Nau-Wagner G, Boch J, Le Good JA, Bremer E. High-affinity transport of choline-O-sulfate and its use as a compatible solute in Bacillus subtilis. Appl. Environ. Microbiol. 65: 560-568 (1999).

Neumann PM, De Souza MP, Pickering IJ, Terry N. Rapid microalgal metabolism of selenate to volatile dimethylselenide. Plant Cell Environ. 26: 897-905 (2003).

Nocito FF, Lancilli C, Crema B, Fourcroy P, Davidian JC, Sacchi GA. Heavy metal stress and sulfate uptake in maize roots. Plant Physiol. 141: 1138-1148 (2006).

Nocito FF, Pirovano L, Cocucci M, Sacchi GA. Cadmium-induced sulfate uptake in maize roots. Plant Physiol. 129: 1872-1879 (2002).

Ollivier B, Caumette P, Garcia JL, Mah RA. Anaerobic bacteria from hypersaline environments. Microbiol. Rev. 58: 27-38 (1994).

Poortinga AM, de Kok LJ. Sulfate and thiol levels in roots and shoot of sulfur-deprived spinach plants as affected by high pedospheric sulfate levels. Phyton-Ann. REI Bot. 40: 95-102 (2000).

Pregitzer KS, Burton AJ, Mroz GD, Liechty HO, MacDonald NW. Foliar sulfur and nitrogen along an 800-km pollution gradient. Can. J. For. Res. 22: 1761-1769 (1992).

Prosser IM, Purves JV, Saker LR, Clarkson DT. Rapid disruption of nitrogen metabolism and nitrate transport in spinach plants deprived of sulphate. J. Exp. Bot. 52: 113-121 (2001).

Rae AL, Smith FW. Localisation of expression of a high-affinity sulfate transporter in barley roots. Planta 215: 565-568 (2002).

Ranathunge K, Steudle E, Lafitte R. Blockage of apoplastic bypass-flow of water in rice roots by insoluble salt precipitates analogous to a Pfeffer cell. Plant Cell Environ. 28: 121-133 (2005).

Rausch T, Wachter A. Sulfur metabolism: a versatile platform for launching defence operations. Trends Plant Sci. 10: 503-509 (2005).

Rigano VDM, Vona V, Carfagna S, Esposito S, Carillo P, Rigano C. Effects of sulfate-starvation and re-supply on growth, NH4+ uptake and starch metabolism in Chlorella sorokiniana. Aust. J. Plant Physiol. 27: 335-342 (2000).

Saito K. Regulation of sulfate transport and synthesis of sulfur-containing amino acids. Curr. Opin. Plant Biol. 3: 188-195 (2000).

Scheibel T, Bell S, Walke S. S. cerevisiae and sulfur: a unique way to deal with the environment. FASEB J. 11: 917-921 (1997).

Shibagaki N, Rose A, McDermott JP, Fujiwara T, Hayashi H, Yoneyama T, Davies JP. Selenate-resistant mutants of Arabidopsis thaliana identify Sultr1;2, a sulfate transporter required for efficient transport of sulfate into roots. Plant J. 29: 475-486 (2002).

Smith FW, Hawkesford MJ, Ealing PM, Clarkson DT, Vanden Berg PJ, Belcher AR, Warrilow AG. Regulation of expression of a cDNA from barley roots encoding a high affinity sulphate transporter. Plant J. 12: 875-884 (1997).

Sohn H, Kuriyama H. Ultradian metabolic oscillation of Saccharomyces cerevisiae during aerobic continuous culture: hydrogen sulphide, a population synchronizer, is produced by sulphite reductase. Yeast 18: 125-135 (2001).

Sohn H, Kuriyama H. The role of amino acids in the regulation of hydrogen sulfide production during ultradian respiratory oscillation of Saccharomyces cerevisiae. Arch. Microbiol. 176: 69-78 (2001).

Stuiver CEE, DeKok LJ, Westerman S. Sulfur deficiency in Brassica oleracea L: Development, biochemical characterization, and sulfur/nitrogen interactions. Russ. J. Plant Physiol. 44: 505-513 (1997).

Takahashi H, Watanabe-Takahashi A, Smith FW, Blake-Kalff M, Hawkesford MJ, Saito K. The roles of three functional sulphate transporters involved in uptake and translocation of sulphate in Arabidopsis thaliana. Plant J. 23: 171-182 (2000).

Takahashi H, Yamazaki M, Sasakura N, Watanabe A, Leustek T, Engler JA, Engler G, Van Montagu M, Saito K. Regulation of sulfur assimilation in higher plants: a sulfate transporter induced in sulfate-starved roots plays a central role in Arabidopsis thaliana. Proc. Natl. Acad. Sci. U.S.A. 94: 11102-11107 (1997).

Terry N, Zayed AM, de Souza MP, Tarun AS. Selenium in higher plants. Annu. Rev. Plant Physiol. Plant Mol. Biol. 51: 401-432 (2000).

Vallero MV, Lettinga G, Lens PN. Assessment of compatible solutes to overcome salinity stress in thermophilic (55 degrees C) methanol-fed sulfate reducing granular sludges. Water Sci. Technol. 48: 195-202 (2003).

van der Ploeg JR, Eichhorn E, Leisinger T. Sulfonate-sulfur metabolism and its regulation in Escherichia coli. Arch. Microbiol. 176: 1-8 (2001).

Vauclare P, Kopriva S, Fell D, Suter M, Sticher L, von Ballmoos P, Krahenbuhl U, den Camp RO, Brunold C. Flux control of sulphate assimilation in Arabidopsis thaliana: adenosine 5'-phosphosulphate reductase is more susceptible than ATP sulphurylase to negative control by thiols. Plant J. 31: 729-740 (2002).

Wang R, Crawford NM. Genetic identification of a gene involved in constitutive, high-affinity nitrate transport in higher plants. Proc. Natl. Acad. Sci. U.S.A. 93: 9297-9301 (1996).

Wang R, Okamoto M, Xing X, Crawford NM. Microarray analysis of the nitrate response in Arabidopsis roots and shoots reveals over 1,000 rapidly responding genes and new linkages to glucose, trehalose-6-phosphate, iron, and sulfate metabolism. Plant Physiol. 132: 556-567 (2003).

Westerman S, Blake-Kalff MMA, De Kok LJ, Stulen I. Sulfate uptake and utilization by two varieties of Brassica oleracea with different sulfur need as affected by atmospheric H2S. Phyton-Ann. REI Bot. 41: 49-61 (2001).

Westerman S, Weidner W, De Kok LJ, Stulen I. Effect of H2S exposure on S-35-sulfate uptake, transport and utilization in curly kale. Phyton-Ann. REI Bot. 40: 293-302 (2000).

White PJ, Bowen HC, Parmaguru P, Fritz M, Spracklen WP, Spiby RE, Meacham MC, Mead A, Harriman M, Trueman LJ, Smith BM, Thomas B, Broadley MR. Interactions between selenium and sulphur nutrition in Arabidopsis thaliana. J. Exp. Bot. 55: 1927-1937 (2004).

Yoshimoto N, Inoue E, Watanabe-Takahashi A, Saito K, Takahashi H. Posttranscriptional regulation of high-affinity sulfate transporters in Arabidopsis by sulfur nutrition. Plant Physiol. 145: 378-388 (2007).

Yoshimoto N, Takahashi H, Smith FW, Yamaya T, Saito K. Two distinct high-affinity sulfate transporters with different inducibilities mediate uptake of sulfate in Arabidopsis roots. Plant J. 29: 465-473 (2002).

Yuasa K, Maeshima M. Purification, properties, and molecular cloning of a novel Ca(2+)-binding protein in radish vacuoles. Plant Physiol. 124: 1069-1078 (2000).

Zimmer W, Mendel R. Molybdenum metabolism in plants. Plant Biol. 1: 160-168 (1999).

Number of references = 91

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