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HORT640 - Metabolic Plant Physiology
References, PAPS reductase
Bick JA, Aslund F, Chen Y, Leustek T. Glutaredoxin function for the carboxyl-terminal domain of the plant-type 5'-adenylylsulfate reductase. Proc. Natl. Acad. Sci. U.S.A. 95: 8404-8409 (1998).
Bick JA, Dennis JJ, Zylstra GJ, Nowack J, Leustek T. Identification of a new class of 5'-adenylylsulfate (APS) reductases from sulfate-assimilating bacteria. J. Bacteriol. 182: 135-142 (2000).
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).
D'Andrea R, Surdin-Kerjan Y, Pure G, Cherest H. Molecular genetics of met 17 and met 25 mutants of Saccharomyces cerevisiae: intragenic complementation between mutations of a single structural gene. Mol. Gen. Genet. 207: 165-170 (1987).
Gleason FK, Holmgren A. Thioredoxin and related proteins in procaryotes. FEMS Microbiol. Rev. 4: 271-297 (1988).
Gutierrez-Marcos JF, Roberts MA, Campbell EI, Wray JL. Three members of a novel small gene-family from Arabidopsis thaliana able to complement functionally an Escherichia coli mutant defective in PAPS reductase activity encode proteins with a thioredoxin-like domain and "APS reductase" activity. Proc. Natl. Acad. Sci. U.S.A. 93: 13377-13382 (1996).
Haverkamp T, Schwenn JD. Structure and function of a cysBJIH gene cluster in the purple sulphur bacterium Thiocapsa roseopersicina. Microbiology 145: 115-125 (1999).
Hofgen R, Kreft O, Willmitzer L, Hesse H. Manipulation of thiol contents in plants. Amino Acids 20: 291-299 (2001).
Kopriva S, Buchert T, Fritz G, Suter M, Benda R, Schunemann V, Koprivova A, Schurmann P, Trautwein AX, Kroneck PM, Brunold C. The presence of an iron-sulfur cluster in adenosine 5'-phosphosulfate reductase separates organisms utilizing adenosine 5'-phosphosulfate and phosphoadenosine 5'-phosphosulfate for sulfate assimilation. J. Biol. Chem. 277: 21786-21791 (2002).
Kopriva S, Koprivova A. Plant adenosine 5'-phosphosulphate reductase: the past, the present, and the future. J. Exp. Bot. 55: 1775-1783 (2004).
Krone FA, Westphal G, Meyer HE, Schwenn JD. PAPS-reductase of Escherichia coli. Correlating the N-terminal amino acid sequence with the DNA of gene cys H. FEBS Lett. 260: 6-9 (1990).
Krone FA, Westphal G, Schwenn JD. Characterisation of the gene cysH and of its product phospho-adenylylsulphate reductase from Escherichia coli. Mol. Gen. Genet. 225: 314-319 (1991).
Li C, Peck HD Jr, Przybyla AE. Cloning of the 3'-phosphoadenylyl sulfate reductase and sulfite reductase genes from Escherichia coli K-12. Gene 53: 227-234 (1987).
Lillig CH, Prior A, Schwenn JD, Aslund F, Ritz D, Vlamis-Gardikas A, Holmgren A. New thioredoxins and glutaredoxins as electron donors of 3'-phosphoadenylylsulfate reductase. J. Biol. Chem. 274: 7695-7698 (1999).
Montoya G, Svensson C, Savage H, Schwenn JD, Sinning I. Crystallization and preliminary X-ray diffraction studies of phospho-adenylylsulfate (PAPS) reductase from E. coli. Acta Crystallogr. D. Biol. Crystallogr. 54: 281-283 (1998).
Murguia JR, Belles JM, Serrano R. The yeast HAL2 nucleotidase is an in vivo target of salt toxicity. J. Biol. Chem. 271: 29029-29033 (1996).
Niehaus A, Gisselmann G, Schwenn JD. Primary structure of the Synechococcus PCC 7942 PAPS reductase gene. Plant Mol. Biol. 20: 1179-1183 (1992).
Prior A, Uhrig JF, Heins L, Wiesmann A, Lillig CH, Stoltze C, Soll J, Schwenn JD. Structural and kinetic properties of adenylyl sulfate reductase from Catharanthus roseus cell cultures. Biochim. Biophys. Acta 1430: 25-38 (1999).
Russel M, Model P, Holmgren A. Thioredoxin or glutaredoxin in Escherichia coli is essential for sulfate reduction but not for deoxyribonucleotide synthesis. J. Bacteriol. 172: 1923-1929 (1990).
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).
Schiff JA. Pathways of assimilatory sulphate reduction in plants and microorganisms. Ciba Found. Symp. 72: 49-69 (1979).
Schwenn JD, Krone FA, Husmann K. Yeast PAPS reductase: properties and requirements of the purified enzyme. Arch. Microbiol. 150: 313-319 (1988).
Schwenn JD, Schriek U. PAPS-reductase from Escherichia coli: characterization of the enzyme as probe for thioredoxins. Z. Naturforsch. [C] 42: 93-102 (1987).
Setya A, Murillo M, Leustek T. Sulfate reduction in higher plants: molecular evidence for a novel 5'-adenylylsulfate reductase. Proc. Natl. Acad. Sci. U.S.A. 93: 13383-13388 (1996).
Thomas D, Barbey R, Surdin-Kerjan Y. Gene-enzyme relationship in the sulfate assimilation pathway of Saccharomyces cerevisiae. Study of the 3'-phosphoadenylylsulfate reductase structural gene. J. Biol. Chem. 265: 15518-15524 (1990).
Tsang ML. Assimilatory sulfate reduction in Escherichia coli: identification of the alternate cofactor for adenosine 3'-phosphate 5'-phosphosulfate reductase as glutaredoxin. J. Bacteriol. 146: 1059-1066 (1981).
Tsang ML, Schiff JA. Assimilatory sulfate reduction in an Escherichia coli mutant lacking thioredoxin activity. J. Bacteriol. 134: 131-138 (1978).
Uria-Nickelsen MR, Leadbetter ER, Godchaux W 3d. Sulfonate-sulfur assimilation by yeasts resembles that of bacteria. FEMS Microbiol. Lett. 114: 73-77 (1993).
Wray JL, Campbell EI, Roberts MA, Gutierrez-Marcos JF. Redefining reductive sulfate assimilation in higher plants: a role for APS reductase, a new member of the thioredoxin superfamily? Chem. Biol. Interact. 109: 153-167 (1998).
Number of references = 29
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