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Sulfate adenylyltransferase

ADP as a substrate in enzyme reactions, ADENYLATE KINASE (or MYOKINASE) ATP SYNTHASE CREATINE KINASE NUCLEOSIDE DIPHOSPHATE KINASE PHOSPHOGLYCERATE KINASE PYRUVATE KINASE RIBONUCLEOTIDE REDUCTASE SULFATE ADENYLYLTRANSFERASE (ADP) [ADP]/[ATP] ratio,... [Pg.721]

SULFATE ADENYLYLTRANSFERASE (ADP) ADRENODOXIN ADSORPTION ABSORPTION BIOMINERALIZATION MICELLAR CATALYSIS LANGMIUR ISOTHERM Adsorption coefficient LANGMUIR ISOTHERM Adsorption of gases,... [Pg.721]

RNA POLYMERASES SELENOPHOSPHATE SYNTHETASE SHIKIMATE KINASE SULFATE ADENYLYLTRANSFERASE TUBULIN TYROSINE LIGASE UBIQUITIN-PROTEIN LIGASES d-XYLULOKINASE ATP-dependent protease La,... [Pg.725]

SQUALENE SYNTHASE SULFATE ADENYLYLTRANSFERASE UBIQUITIN-PROTEIN LIGASES PYROPHOSPHATE FRUOTOSE-6-PHOS-PHATE 1-PHOSPHOTRANSFERASE PYROPHOSPHOMEVALONATE DECARBOXYLASE... [Pg.776]

SULFATE ADENYLYLTRANSFERASE SULFATE ADENYLYLTRANSFERASE (ADR) Sulfhydryl-disulfide interchange,... [Pg.783]

Fig. 4.2. The oxidation mechanisms of lactate by sulfate in the sulfate-reducing bacteria of Desulfovibrio genus. Circled numbers 1, lactate dehydrogenase (cytochrome c-553) 2, pyruvate-ferredoxin 2-oxidoreductase (CoA-acetylating) 3, phosphate acetyltransferase 4, acetate kinase 5, sulfate adenylyltransferase 6, adenylylsulfate reductase 7, sulfite reductase 8, adenylate kinase. ATP adenosine 5 -triphosphate is also biosynthesized by the catalysis of ATP synthase using the energy liberated by the electron transfer around this part... Fig. 4.2. The oxidation mechanisms of lactate by sulfate in the sulfate-reducing bacteria of Desulfovibrio genus. Circled numbers 1, lactate dehydrogenase (cytochrome c-553) 2, pyruvate-ferredoxin 2-oxidoreductase (CoA-acetylating) 3, phosphate acetyltransferase 4, acetate kinase 5, sulfate adenylyltransferase 6, adenylylsulfate reductase 7, sulfite reductase 8, adenylate kinase. ATP adenosine 5 -triphosphate is also biosynthesized by the catalysis of ATP synthase using the energy liberated by the electron transfer around this part...
The sulfite oxidation pathway other than that mentioned above occurs in some thiobacilli sulfite reacts with AMP by the catalysis of adenylylsulfate reductase (APS reductase) to form APS and then APS reacts with diphosphate by the catalysis of sulfate adenylyltransferase to produce sulfate and ATP (Lyric and Suzuki, 1970c Stille and Triiper, 1984), or APS reacts with orthophosphate by the catalysis of sulfate adenylyltransferase (ADP) and ATP is formed from resulting ADP by the catalysis of adenylate kinase (Zimmermann et al., 1999). [Pg.68]

As pointed out by Reuveny and Filner (1977), the fact that cysteine repression of sulfate adenylyltransferase in bacteria is complete, whereas in tobacco cells cysteine repression is incomplete may reflect the utilization of the sulfate assimilation pathway by bacteria mainly for sulfate reduction, whereas in plants sulfate assimilation is also required for synthesis of sulfate esters and sulfonolipids (de Meio, 1975). Complete repression by the product of one branch might be deleterious since it would deprive the plant of end-products of the other branch. [Pg.466]

Sulfate adenylyltransferase (ATP sulfurylase) 2 adenosine 5 -sulfatophosphate kinase 3 adenosine 5 -sulfatophosphate sulfo-transferase 4 thiosulfonate reductase 5 cysteine synthase... [Pg.325]


See other pages where Sulfate adenylyltransferase is mentioned: [Pg.665]    [Pg.665]    [Pg.725]    [Pg.1056]    [Pg.292]    [Pg.292]    [Pg.161]    [Pg.58]    [Pg.68]    [Pg.68]    [Pg.26]    [Pg.464]    [Pg.465]    [Pg.466]    [Pg.467]    [Pg.467]    [Pg.502]   
See also in sourсe #XX -- [ Pg.55 , Pg.68 ]




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Adenylyltransferase

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