Literature DB >> 5808082

Involvement of phosphoenolpyruvate in lactose utilization by group N streptococci.

L L McKay, L A Walter, W E Sandine, P R Elliker.   

Abstract

The effect of sodium fluoride on lactose metabolism and o-nitrophenyl-beta-d-galactopyranoside (ONPG) hydrolysis by Streptococcus lactis strains 7962 and C(2)F suggested that different mechanisms of lactose utilization existed in the two strains. Sodium fluoride prevented lactose utilization and ONPG hydrolysis by whole cells of S. lactis C(2)F but had no effect on S. lactis 7962. Although hydrolysis of ONPG by toluene-treated cells of S. lactis 7962 occurred without addition of phospho-enolpyruvate (PEP), toluene-treated cells of S. lactis C(2)F required the presence of this cofactor. Concentrated cell extracts of S. lactis C(2)F hydrolyzed ONPG; this hydrolysis was inhibited by NaF, but the addition of PEP, in the presence of NaF, restored maximal activity. Addition of acetyl-phosphate, carbamyl-phosphate, adenosine-5'-triphosphate, guanosine-5'-triphosphate, or uridine-5'-triphosphate did not stimulate activity. The presence of cofactors did not stimulate and NaF did not inhibit the hydrolysis in extracts of S. lactis 7962. To confirm the operation of two mechanisms, S. lactis 7962 was shown to hydrolyze lactose to glucose and galactose, whereas S. lactis C(2)F was unable to split the disaccharide. In addition, whole cells of S. lactis C(2)F rapidly accumulated a phosphorylated derivative of thiomethyl-beta-d-galactoside (TMG) which behaved chromatographically and electrophoretically like TMG-PO(4). Unexpectedly, S. lactis 7962 also accumulated a TMG derivative, although the rate was extremely low. These data indicate that different mechanisms of lactose utilization exist in the two strains, with a phosphorylation step dependent on PEP involved in S. lactis C(2)F.

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Year:  1969        PMID: 5808082      PMCID: PMC250061          DOI: 10.1128/jb.99.2.603-610.1969

Source DB:  PubMed          Journal:  J Bacteriol        ISSN: 0021-9193            Impact factor:   3.490


  22 in total

1.  New color reactions for determination of sugars in polysaccharides.

Authors:  Z DISCHE
Journal:  Methods Biochem Anal       Date:  1955

2.  Evidence for the formation and utilization of lactobionic acid by Penicillium chrysogenum.

Authors:  W BUCEK; W M CONNORS; W M CORT; H R ROBERTS
Journal:  Arch Biochem Biophys       Date:  1956-08       Impact factor: 4.013

3.  Carbohydrate transport in Staphylococcus aureus. VI. The nature of the derivatives accumulated.

Authors:  W Hengstenberg; J B Egan; M L Morse
Journal:  J Biol Chem       Date:  1968-04-25       Impact factor: 5.157

4.  Metabolism of lactose by Staphylococcus aureus.

Authors:  W Hengstenberg; W K Penberthy; K L Hill; M L Morse
Journal:  J Bacteriol       Date:  1968-12       Impact factor: 3.490

5.  Purification and properties of Streptococcus lactis beta-galactosidase.

Authors:  G A McFeters; W E Sandine; P R Elliker
Journal:  J Bacteriol       Date:  1967-03       Impact factor: 3.490

6.  Lactose and maltose uptake by Streptococcus lactis.

Authors:  J E Citti; W E Sandine; P R Elliker
Journal:  J Dairy Sci       Date:  1967-04       Impact factor: 4.034

7.  Oxidation of mono- and disaccharides to aldonic acids by Pseudomonas species.

Authors:  R BENTLEY; L SLECHTA
Journal:  J Bacteriol       Date:  1960-03       Impact factor: 3.490

8.  SYNTHESIS OF RESERVE MATERIALS FOR ENDOGENOUS METABOLISM IN STREPTOCOCCUS FAECALIS.

Authors:  W W FORREST; D J WALKER
Journal:  J Bacteriol       Date:  1965-06       Impact factor: 3.490

9.  BETA-GALACTOSIDASE OF STREPTOCOCCUS LACTIS.

Authors:  J E CITTI; W E SANDINE; P R ELLIKER
Journal:  J Bacteriol       Date:  1965-04       Impact factor: 3.490

10.  INDUCTION OF LACTOSE UTILIZATION IN STAPHYLOCOCCUS AUREUS.

Authors:  J K MCCLATCHY; E D ROSENBLUM
Journal:  J Bacteriol       Date:  1963-12       Impact factor: 3.490

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  46 in total

1.  Involvement of phosphoenolpyruvate in the catabolism of caries-conducive disaccharides by Streptococcus mutans: lactose transport.

Authors:  R Calmes
Journal:  Infect Immun       Date:  1978-03       Impact factor: 3.441

2.  Transport of beta-Galactosides in Lactobacillus plantarum NC2.

Authors:  Scott R Jeffrey; Walter J Dobrogosz
Journal:  Appl Environ Microbiol       Date:  1990-08       Impact factor: 4.792

3.  Transport and metabolism of lactose, glucose, and galactose in homofermentative lactobacilli.

Authors:  M W Hickey; A J Hillier; G R Jago
Journal:  Appl Environ Microbiol       Date:  1986-04       Impact factor: 4.792

4.  Simple Method To Detect beta-Galactosidase.

Authors:  T Bhowmik; E H Marth
Journal:  Appl Environ Microbiol       Date:  1989-12       Impact factor: 4.792

5.  Co-induction of beta-galactosidase and the lactose-P-enolpyruvate phosphotransferase system in Streptococcus salivarius and Streptococcus mutans.

Authors:  I R Hamilton; G C Lo
Journal:  J Bacteriol       Date:  1978-12       Impact factor: 3.490

6.  Characterization, expression, and mutation of the Lactococcus lactis galPMKTE genes, involved in galactose utilization via the Leloir pathway.

Authors:  Benoît P Grossiord; Evert J Luesink; Elaine E Vaughan; Alain Arnaud; Willem M de Vos
Journal:  J Bacteriol       Date:  2003-02       Impact factor: 3.490

7.  Transduction of lactose metabolism in Streptococcus lactis C2.

Authors:  L L McKay; B R Cords; K A Baldwin
Journal:  J Bacteriol       Date:  1973-09       Impact factor: 3.490

8.  Characterization of the Highly Autolytic Lactococcus lactis subsp. cremoris Strains CO and 2250.

Authors:  H R Riepe; C J Pillidge; P K Gopal; L L McKay
Journal:  Appl Environ Microbiol       Date:  1997-10       Impact factor: 4.792

9.  Biochemistry and genetics of galactose metabolism in group H Streptococcus strain Challis.

Authors:  G H Luginbuhl; H Gooder
Journal:  J Bacteriol       Date:  1972-02       Impact factor: 3.490

10.  Lactose-hydrolyzing enzymes of Lactobacillus species.

Authors:  L Premi; W E Sandine; P R Elliker
Journal:  Appl Microbiol       Date:  1972-07
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