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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, ATP sulfurylase or ATP sulphurylase

Ahmad A, Abraham G, Abdin MZ. Biochemical evaluation of sulfur and nitrogen assimilation potential of mustard (Brassica juncea L. Czern. & Coss.) under application of slow-release sulfur fertilizer. Appl. Biochem. Biotechnol. 96: 167-172 (2001).

Astolfi S, Zuchi S, Passera C. Role of sulphur availability on cadmium-induced changes of nitrogen and sulphur metabolism in maize (Zea mays L.) leaves. J. Plant Physiol. 161: 795-802 (2004).

Awazuhara M, Fujiwara T, Hayashi H, Watanabe-Takahashi A, Takahashi H, Saito K. The function of SULTR2;1 sulfate transporter during seed development in Arabidopsis thaliana. Physiol. Plant. 125: 95-105 (2005).

Bagchi D, Verma D. Selenate-regulation of sulfur metabolism in a cyanobacterium, Phormidium uncinatum. J. Plant Physiol. 150: 762-764 (1997).

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).

Bolchi A, Petrucco S, Tenca PL, Foroni C, Ottonello S. Coordinate modulation of maize sulfate permease and ATP sulfurylase mRNAs in response to variations in sulfur nutritional status: stereospecific down-regulation by L-cysteine. Plant Mol. Biol. 39: 527-537 (1999).

Borges-Walmsley MI, Turner G, Bailey AM, Brown J, Lehmbeck J, Clausen IG. Isolation and characterisation of genes for sulphate activation and reduction in Aspergillus nidulans: implications for evolution of an allosteric control region by gene duplication. Mol. Gen. Genet. 247: 423-429 (1995).

Buchanan-Wollaston V, Ainsworth C. Leaf senescence in Brassica napus: cloning of senescence related genes by subtractive hybridisation. Plant Mol. Biol. 33: 821-834 (1997).

Burgener M, Suter M, Jones S, Brunold C. Cyst(e)ine is the transport metabolite of assimilated sulfur from bundle-sheath to mesophyll cells in maize leaves. Plant Physiol. 116: 1315-1322 (1998).

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

Clarke DL, Newbert RW, Turner G. Cloning and characterisation of the adenosyl phosphosulphate kinase gene from Aspergillus nidulans. Curr. Genet. 32: 408-412 (1997).

Cumming M, Leung S, McCallum J, McManus MT. Complex formation between recombinant ATP sulfurylase and APS reductase of Allium cepa (L.). FEBS Lett. 581: 4139-4147 (2007).

de Souza MP, Lytle CM, Mulholland MM, Otte ML, Terry N. Selenium assimilation and volatilization from dimethylselenoniopropionate by Indian mustard. Plant Physiol. 122: 1281-1288 (2000).

Deyrup AT, Krishnan S, Cockburn BN, Schwartz NB. Deletion and site-directed mutagenesis of the ATP-binding motif (P-loop) in the bifunctional murine ATP-sulfurylase/adenosine 5'-phosphosulfate kinase enzyme. J. Biol. Chem. 273: 9450-9456 (1998).

Deyrup AT, Krishnan S, Singh B, Schwartz NB. Activity and stability of recombinant bifunctional rearranged and monofunctional domains of ATP-sulfurylase and adenosine 5'-phosphosulfate kinase. J. Biol. Chem. 274: 10751-10757 (1999).

Fitzgerald MA, Ugalde TD, Anderson JW. Sulphur nutrition affects delivery and metabolism of S in developing endosperms of wheat. J. Exp. Bot. 52: 1519-1526 (2001).

Gonzalez-Arroyo JG, Vega JM, Perez-Castineira JR. Regulation of the O-acetyl-L-serine(thiol)lyase activity in Monoraphidium braunii. J. Physiol. Biochem. 54: 141-147 (1998).

Harada E, Kusano T, Sano H. Differential expression of genes encoding enzymes involved in sulfur assimilation pathways in response to wounding and jasmonate in Arabidopsis thaliana. J. Plant Physiol. 156: 272-276 (2000).

Hartmann T, Honicke P, Wirtz M, Hell R, Rennenberg H, Kopriva S. Regulation of sulphate assimilation by glutathione in poplars (Populus tremula x P. alba) of wild type and overexpressing gamma-glutamylcysteine synthetase in the cytosol. J. Exp. Bot. 55: 837-845 (2004).

Hatzfeld Y, Cathala N, Grignon C, Davidian JC. Effect of ATP sulfurylase overexpression in bright yellow 2 tobacco cells. Regulation of ATP sulfurylase and SO4(2-) transport activities. Plant Physiol. 116: 1307-1313 (1998).

Hatzfeld Y, Lee S, Lee M, Leustek T, Saito K. Functional characterization of a gene encoding a fourth ATP sulfurylase isoform from Arabidopsis thaliana. Gene 248: 51-58 (2000).

Heiss S, Schafer HJ, Haag-Kerwer A, Rausch T. Cloning sulfur assimilation genes of Brassica juncea L.: cadmium differentially affects the expression of a putative low-affinity sulfate transporter and isoforms of ATP sulfurylase and APS reductase. Plant Mol. Biol. 39: 847-857 (1999).

Hell R. Molecular physiology of plant sulfur metabolism. Planta 202: 138-148 (1997).

Herschbach C, Mult S, Kreuzwieser J, Kopriva S. Influence of anoxia on whole plant sulphur nutrition of flooding-tolerant poplar (Populus tremula x P. alba). Plant Cell Environ. 28: 167-175 (2005).

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

Jullien D, Crozatier M, Kas E. cDNA sequence and expression pattern of the Drosophila melanogaster PAPS synthetase gene: a new salivary gland marker. Mech. Dev. 68: 179-186 (1997).

Kappler U, Dahl C. Enzymology and molecular biology of prokaryotic sulfite oxidation. FEMS Microbiol. Lett. 203: 1-9 (2001).

Klaassen CD, Boles JW. Sulfation and sulfotransferases 5: the importance of 3'-phosphoadenosine 5'-phosphosulfate (PAPS) in the regulation of sulfation. FASEB J. 11: 404-418 (1997).

Koprivova A, Melzer M, von Ballmoos P, Mandel T, Brunold C, Kopriva S. Assimilatory sulfate reduction in C3, C3-C4, and C4 species of Flaveria. Plant Physiol. 127: 543-550 (2001).

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).

Leustek T, Murillo M, Cervantes M. Cloning of a cDNA encoding ATP sulfurylase from Arabidopsis thaliana by functional expression in Saccharomyces cerevisiae. Plant Physiol. 105: 897-902 (1994).

Leustek T, Saito K. Sulfate transport and assimilation in plants. Plant Physiol. 120: 637-644 (1999).

Li H, Deyrup A, Mensch JR Jr, Domowicz M, Konstantinidis AK, Schwartz NB. The isolation and characterization of cDNA encoding the mouse bifunctional ATP sulfurylase-adenosine 5'-phosphosulfate kinase. J. Biol. Chem. 270: 29453-29459 (1995).

MacRae I, Segel IH. ATP sulfurylase from filamentous fungi: which sulfonucleotide is the true allosteric effector? Arch. Biochem. Biophys. 337: 17-26 (1997).

MacRae IJ, Rose AB, Segel IH. Adenosine 5'-phosphosulfate kinase from Penicillium chrysogenum. site-directed mutagenesis at putative phosphoryl-accepting and ATP P-loop residues. J. Biol. Chem. 273: 28583-28589 (1998).

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

McCallum JA, Pither-Joyce M, Shaw M. Sulfur deprivation and genotype affect gene expression and metabolism of onion roots. J. Am. Soc. Hortic. Sci. 127: 583-589 (2002).

Murillo M, Leustek T. ATP-sulfurylase from Arabidopsis thaliana and Escherichia coli are functionally equivalent but structurally and kinetically divergent: nucleotide sequence of two ATP-sulfurylase cDNAs from Arabidopsis thaliana and analysis of a recombinant enzyme. Arch. Biochem. Biophys. 323: 195-204 (1995).

Ozeran JD, Westley J, Schwartz NB. Identification and partial purification of PAPS translocase. Biochemistry 35: 3695-3703 (1996).

Pilon-Smits EA, Hwang S, Mel Lytle C, Zhu Y, Tai JC, Bravo RC, Chen Y, Leustek T, Terry N. Overexpression of ATP sulfurylase in indian mustard leads to increased selenate uptake, reduction, and tolerance. Plant Physiol. 119: 123-132 (1999).

Ravina CG, Chang CI, Tsakraklides GP, McDermott JP, Vega JM, Leustek T, Gotor C, Davies JP. The sac mutants of Chlamydomonas reinhardtii reveal transcriptional and posttranscriptional control of cysteine biosynthesis. Plant Physiol. 130: 2076-2084 (2002).

Renosto F, Patel HC, Martin RL, Thomassian C, Zimmerman G, Segel IH. ATP sulfurylase from higher plants: Kinetic and structural characterization of the chloroplast and cytosol enzymes from spinach leaf. Arch. Biochem. Biophys. 307: 272-285 (1993).

Reuveny Z, Filner P. A new assay for ATP sulfurylase based on differential solubility of the sodium salts of adenosine 5-phosphosulfate and sulfate. Anal. Biochem. 75: 410-428 (1976).

Rosenthal E, Leustek T. A multifunctional Urechis caupo protein, PAPS synthetase, has both ATP sulfurylase and APS kinase activities. Gene 165: 243-248 (1995).

Roth U, von Roepenack-Lahaye E, Clemens S. Proteome changes in Arabidopsis thaliana roots upon exposure to Cd2+. J. Exp. Bot. 57: 4003-4013 (2006).

Rother M, Krauss GJ, Grass G, Wesenberg D. Sulphate assimilation under Cd stress in Physcomitrella patens - combined transcript, enzyme and metabolite profiling. Plant Cell Environ. 29: 1801-1811 (2006).

Rotte C, Leustek T. Differential subcellular localization and expression of ATP sulfurylase and 5'-adenylylsulfate reductase during ontogenesis of Arabidopsis leaves indicates that cytosolic and plastid forms of ATP sulfurylase may have specialized functions. Plant Physiol. 124: 715-724 (2000).

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

Savage H, Montoya G, Svensson C, Schwenn JD, Sinning I. Crystal structure of phosphoadenylyl sulphate (PAPS) reductase: a new family of adenine nucleotide alpha hydrolases. Structure 5: 895-906 (1997).

Schmutz D. Sulphur metabolism A. ATP-sulphurylase. Meth. Plant Biochem. 3: 335-337 (1990).

Schwartz NB, Lyle S, Ozeran JD, Li H, Deyrup A, Ng K, Westley J. Sulfate activation and transport in mammals: system components and mechanisms. Chem. Biol. Interact. 109: 143-151 (1998).

Schwenn JD, Depka B. Assimilatory sulfate reduction by choloroplasts: the regulatory influence of adenosine-mono-and adenosine-diphosphate. Z. Naturforsch. [C] 32: 792-797 (1977).

Shailubhai K, Singh RK, Schmuke JJ, Jacob GS. An enzymatic procedure for the preparation and purification of 3'-phosphoadenosine 5'-phospho-[35S]sulfate ([35S]PAPS): applications in syntheses of 8-azido and 8-bromo derivatives of [35S]PAPS. Anal. Biochem. 243: 165-170 (1996).

Sors TG, Ellis DR, Na GN, Lahner B, Lee S, Leustek T, Pickering IJ, Salt DE. Analysis of sulfur and selenium assimilation in Astragalus plants with varying capacities to accumulate selenium. Plant J. 42: 785-797 (2005).

Sperling D, Kappler U, Wynen A, Dahl C, Truper HG. Dissimilatory ATP sulfurylase from the hyperthermophilic sulfate reducer Archaeoglobus fulgidus belongs to the group of homo-oligomeric ATP sulfurylases. FEMS Microbiol. Lett. 162: 257-264 (1998).

Takahashi H, Braby CE, Grossman AR. Sulfur economy and cell wall biosynthesis during sulfur limitation of Chlamydomonas reinhardtii. Plant Physiol. 127: 665-673 (2001).

Thomas D, Surdin-Kerjan Y. Metabolism of sulfur amino acids in Saccharomyces cerevisiae. Microbiol. Mol. Biol. Rev. 61: 503-532 (1997).

Uria-Nickelsen MR, Leadbetter ER, Godchaux W 3d. Sulfonate-sulfur assimilation by yeasts resembles that of bacteria. FEMS Microbiol. Lett. 114: 73-77 (1993).

Van Huysen T, Terry N, Pilon-Smits EA. Exploring the selenium phytoremediation potential of transgenic Indian mustard overexpressing ATP sulfurylase or cystathionine-gamma-synthase. Int. J. Phytoremediation. 6: 111-118 (2004).

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).

Venkatachalam KV, Akita H, Strott CA. Molecular cloning, expression, and characterization of human bifunctional 3'-phosphoadenosine 5'-phosphosulfate synthase and its functional domains. J. Biol. Chem. 273: 19311-19320 (1998).

Venkatachalam KV, Fuda H, Koonin EV, Strott CA. Site-selected mutagenesis of a conserved nucleotide binding HXGH motif located in the ATP sulfurylase domain of human bifunctional 3'-phosphoadenosine 5'-phosphosulfate synthase. J. Biol. Chem. 274: 2601-2604 (1999).

Yanagisawa K, Sakakibara Y, Suiko M, Takami Y, Nakayama T, Nakajima H, Takayanagi K, Natori Y, Liu MC. cDNA cloning, expression, and characterization of the human bifunctional ATP sulfurylase/adenosine 5'-phosphosulfate kinase enzyme. Biosci. Biotechnol. Biochem. 62: 1037-1040 (1998).

Yildiz FH, Davies JP, Grossman A. Sulfur availability and the SAC1 gene control adenosine triphosphate sulfurylase gene expression in Chlamydomonas reinhardtii. Plant Physiol. 112: 669-675 (1996).

Number of references = 64

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