Literature DB >> 7030254

The influence of growth conditions on the synthesis of molybdenum cofactor in Proteins mirabilis.

V P Claassen, L F Oltmann, S Bus, J v 't Riet, A H Stouthamer.   

Abstract

Cell-free extracts of Proteus mirabilis were able to reconstitute NADPH-dependent assimilatory nitrate reductase in crude extracts of the Neurospora crassa mutant strain nit-1, lacking molybdenum cofactor. Molybdenum cofactor was formed in the cytoplasm of the bacterium even in the presence of oxygen during growth though under these conditions no molybdo enzymes are formed. As a consequence no cofactor could be released by acid treatment from membranes of cells growth aerobically. The amount of cofactor released from membranes of cells grown anaerobically under various conditions was proportional to the amount of molybdo enzymes formed. During growth in the presence of tungstate a cofactor, which lacks molybdenum, was found in the cytoplasm. For detection of this so-called demolybdo cofactor the presence of molybdate during reconstitution was essential. Moreover, the cytoplasmic cofactor pool in cells grown in the presence of tungstate appeared to be two to three times higher than in cells grown under similar conditions without tungstate. After anaerobic growth in the presence of tungstate, the inactive demolybdo reductases were shown to contain partly no cofactor and partly a demolybdo cofactor. The P. mirabilis chlorate resistant mutant S 556 did not contain molybdenum cofactor. In two other chl-mutants the cofactor activity was the same as in the wild type.

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Year:  1981        PMID: 7030254     DOI: 10.1007/bf00527070

Source DB:  PubMed          Journal:  Arch Microbiol        ISSN: 0302-8933            Impact factor:   2.552


  25 in total

1.  The purification and properties of formate dehydrogenase and nitrate reductase from Escherichia coli.

Authors:  H G Enoch; R L Lester
Journal:  J Biol Chem       Date:  1975-09-10       Impact factor: 5.157

2.  Synthesis of nitrate reductase components in chlorate-resistant mutants of Escherichia coli.

Authors:  C H MacGregor
Journal:  J Bacteriol       Date:  1975-03       Impact factor: 3.490

3.  [The nature of a low-molecular factor common to molybdenum containing enzymes].

Authors:  N P L'vov; V L Ganelin; Z Alikulov; V L Kretovich
Journal:  Izv Akad Nauk SSSR Biol       Date:  1975 May-Jun

4.  Influence of tungstate on the formation and activities of four reductases in Proteus mirabilis: identification of two new molybdo-enzymes: chlorate reductase and tetrathionate reductase.

Authors:  L F Oltmann; V P Claassen; P Kastelein; W N Reijnders; A H Stouthamer
Journal:  FEBS Lett       Date:  1979-10-01       Impact factor: 4.124

5.  In vitro formation of assimilatory nitrate reductase: presence of the constitutive component in bacteria.

Authors:  P A Ketchum; R S Swarin
Journal:  Biochem Biophys Res Commun       Date:  1973-06-19       Impact factor: 3.575

6.  Regulation of reductase formation in Proteus mirabilis. II. Influence of growth with azide and of haem deficiency on nitrate reductase formation.

Authors:  G N De Groot; A H Stouthamer
Journal:  Biochim Biophys Acta       Date:  1970-06

7.  In vitro assembly of Neurospora assimilatory nitrate reductase from protein subunits of a Neurospora mutant and the xanthine oxidizing or aldehyde oxidase systems of higher animals.

Authors:  P A Ketchum; H Y Cambier; W A Frazier; C H Madansky; A Nason
Journal:  Proc Natl Acad Sci U S A       Date:  1970-07       Impact factor: 11.205

8.  Restoration of reduced nicotinamide adenine dinucleotide phosphate-nitrate reductase activity of a Neurospora mutant by extracts of various chlorate-resistant mutants of Escherichia coli.

Authors:  C H MacGregor; C A Schnaitman
Journal:  J Bacteriol       Date:  1972-10       Impact factor: 3.490

9.  In vitro formation of nitrate reductase using extracts of the nitrate reductase mutant of Neurospora crassa, nit-1, and Rhodospirillum rubrum.

Authors:  P A Ketchum; C L Sevilla
Journal:  J Bacteriol       Date:  1973-11       Impact factor: 3.490

10.  Isolation of an iron-molybdenum cofactor from nitrogenase.

Authors:  V K Shah; W J Brill
Journal:  Proc Natl Acad Sci U S A       Date:  1977-08       Impact factor: 11.205

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  6 in total

1.  Occurrence of Nitrate Reductase and Molybdopterin in Xanthomonas maltophilia.

Authors:  L M Woodard; A R Bielkie; J F Eisses; P A Ketchum
Journal:  Appl Environ Microbiol       Date:  1990-12       Impact factor: 4.792

Review 2.  Nitrate respiration in relation to facultative metabolism in enterobacteria.

Authors:  V Stewart
Journal:  Microbiol Rev       Date:  1988-06

3.  Involvement of chlA, E, M, and N loci in Escherichia coli molybdopterin biosynthesis.

Authors:  M E Johnson; K V Rajagopalan
Journal:  J Bacteriol       Date:  1987-01       Impact factor: 3.490

4.  Isolation and characterization of Paracoccus denitrificans mutants with defects in the metabolism of one-carbon compounds.

Authors:  N Harms; G E de Vries; K Maurer; E Veltkamp; A H Stouthamer
Journal:  J Bacteriol       Date:  1985-12       Impact factor: 3.490

5.  Molybdenum cofactor from the cytoplasmic membrane of Proteus mirabilis.

Authors:  V P Claassen; L F Oltmann; C E Vader; J van 't Riet; A H Stouthamer
Journal:  Arch Microbiol       Date:  1982-12-03       Impact factor: 2.552

6.  Molybdenum cofactor in chlorate-resistant and nitrate reductase-deficient insertion mutants of Escherichia coli.

Authors:  J B Miller; N K Amy
Journal:  J Bacteriol       Date:  1983-08       Impact factor: 3.490

  6 in total

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