Structure and properties of the phosphoenolpyruvate: glucose phosphotransferase system of oral streptococci
- 1 April 1984
- journal article
- research article
- Published by Canadian Science Publishing in Canadian Journal of Microbiology
- Vol. 30 (4) , 495-502
- https://doi.org/10.1139/m84-073
Abstract
The presence of three distinct enzymes II that catalysed the phosphoenolpyruvate-dependent phosphorylation of glucose, fructose, and mannose was established in membranes of glucose-grown cells of Streptococcus salivarius 25975 and various strains of Streptococcus mutans. The enzyme II mannose phosphorylated mainly mannose, glucose, and 2-deoxyglucose, and the enzyme II glucose phosphorylated glucose, α-methylglucoside, and 2-deoxyglucose. The phosphoenolpyruvate-dependent phosphorylation of glucose and α-methylglucoside by isolated membrane of wild-type or EII mannose negative mutant cells did not require the presence of any soluble protein other than enzyme I and the phosphocarrier protein HPr. This result suggested that oral streptococci do not possess a soluble factor III glucose. The enzyme II activities varied as a function of the growth sugar but were not coordinately regulated. The variation elicited by specific sugars was not identical for all the strains tested. Nevertheless, in the case of the S. mutans strains, growth at the expense of lactose always caused a significant decrease in the level of enzyme II activities. Finally, experiments conducted with EII mannose negative mutants and also with a pseudorevertant isolated from one of these mutants indicated that the preferential utilization of glucose over lactose by cells growing in mixtures depended on the presence of the EII mannose, but not on glucose-derived metabolites.This publication has 12 references indexed in Scilit:
- Regulation of hexitol catabolism in Streptococcus mutansJournal of Bacteriology, 1983
- Sugar transport by the bacterial phosphotransferase system. The glucose receptors of the Salmonella typhimurium phosphotransferase system.Journal of Biological Chemistry, 1982
- Regulation of lactose permease activity by the phosphoenolpyruvate:sugar phosphotransferase system: evidence for direct binding of the glucose-specific enzyme III to the lactose permease.Proceedings of the National Academy of Sciences, 1982
- Glucose transport in Streptococcus salivarius. Evidence for the presence of a distinct phosphoenolpyruvate: glucose phosphotransferase system which catalyses the phosphorylation of α-methyl glucosideCanadian Journal of Microbiology, 1982
- Competition between Two Pathways for Sugar Uptake by the Phosphoenolpyruvate‐Dependent Sugar Phosphotransferase System in Salmonella typhimuriumEuropean Journal of Biochemistry, 1981
- Modified assay procedures for the phosphotransferase system in enteric bacteriaAnalytical Biochemistry, 1979
- Effect of Growth Rate and Glucose Concentration on the Activity of the Phosphoenolpyruvate Phosphotransferase System in Streptococcus mutans Ingbritt Grown in Continuous CultureInfection and Immunity, 1979
- Co-induction of beta-galactosidase and the lactose-P-enolpyruvate phosphotransferase system in Streptococcus salivarius and Streptococcus mutansJournal of Bacteriology, 1978
- The bacterial phosphoenolpyruvate: Sugar phosphotransferase systemBiochimica et Biophysica Acta (BBA) - Reviews on Biomembranes, 1976
- PROTEIN MEASUREMENT WITH THE FOLIN PHENOL REAGENTJournal of Biological Chemistry, 1951