1887

Abstract

SUMMARY: Radioactive labelling of the amino sugars in gonococcal peptidoglycan was followed by treatment with muramidase and TLC separation of the products. Even after very brief periods of labelling (0.5 min) the peptidoglycan was already cross-linked to some 80% of the final value and little change occurred within 2 min. The remaining cross-linking was achieved only over a period of about one generation time. Streptomycete endopeptidase was used to show the extent to which new chains were cross-linked to old. Even at the earliest times many cross-linked units contained new material in both moieties and by 3 min there was little distinction in relative labelling, indicating that in most newly synthesized glycan chains are cross-linked to other new chains rather than to pre-existing peptidoglycan. A model is proposed in which newly polymerized monomer units are predestined either towards dimer formation with other new chains, which are then rapidly -acetylated and not further cross-linked, or towards the formation of trimers and higher oligomers, the latter being a slower process. Although significant -acetylation of peptidoglycan was detectable even at the earliest times, efforts to detect -acetylated lipid intermediates were unsuccessful. The chief lipid intermediate found was apparently the disaccharide-peptide unit linked to undecaprenol.

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1986-09-01
2024-04-19
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References

  1. Anderson J. S., Matsuhashi M., Haskin M. A., Strominger J. L. 1967; Biosynthesis of the peptidoglycan of bacterial cell wall. II. Phospholipid carriers in the reaction sequence. Journal of Biological Chemistry 242:3180–3190
    [Google Scholar]
  2. Blundell J. K., Perkins H.R. 1981; Effects of ß-lactam antibiotics on peptidoglycan synthesis in growing Neisseria gonorrhoeae, including changes in the degree of O-acetylation. Journal of Bacteriology 147:633–641
    [Google Scholar]
  3. Blundell J. K., Perkins H. R. 1985ɑ; Selectivity for O-acetylated peptidoglycan during endopeptidase action by permeabilized Neisseria gonorrhoeae . FEMS Microbiology Letters 30:67–69
    [Google Scholar]
  4. Blundell J. K., Perkins H. R. 1985b; The peptidoglycan of Neisseria gonorrhoeae, with or without O-acetyl groups, contains anhydromuramyl residues. Journal of General Microbiology 131:3397–3400
    [Google Scholar]
  5. Blundell J. K., Smith G. J., Perkins H. R. 1980; The peptidoglycan of Neisseria gonorrhoeae: O-acetylation and lysozyme sensitivity. FEMS Microbiology Letters 9:259–261
    [Google Scholar]
  6. Brown C. A., Perkins H. R. 1979; In vitro synthesis of peptidoglycan by β-lactam-sensitive and-resistant strains of Neisseria gonorrheeae·. effects of β-1actam and other antibiotics. Antimicrobial Agents and Chemotherapy 16:28–36
    [Google Scholar]
  7. Chapman S. J., Perkins H. R. 1983; Peptidoglycan-degrading enzymes in ether-treated cells of Neisseria gonorrhoeae . Journal of General Microbiology 129:877–883
    [Google Scholar]
  8. Dougherty T. J. 1983a; Synthesis and modification of the peptidoglycan in Neisseria gonorrhoeae . FEMS Microbiology Letters 17:51–53
    [Google Scholar]
  9. Dougherty T. J. 1983b; Peptidoglycan biosynthesis in Neisseria gonorrhoeae strains sensitive and intrinsically resistant to β-1actam antibiotics. Journal of Bacteriology 153:429–435
    [Google Scholar]
  10. Dougherty T. J. 1985; Involvement of a change of penicillin target and peptidoglycan structure in low-level resistance to β-1actam antibiotics in Neisseria gonorrhoeae . Antimicrobial Agents and Chemotherapy 28:90–95
    [Google Scholar]
  11. Guysen J.-M., Leyh-Bouille M., Bonaly R., Nieto M., Perkins H. R., Schleifer K. H., Kandler O. 1970; Isolation of DD-carboxypepti-dase from Streptomyces albus G culture filtrates. Biochemistry 9:2955–2961
    [Google Scholar]
  12. Gmeiner J., Kroll H.-P. 1981; Murein biosynthesis and O-acetylation of A-acetylmuramic acid during the cell division cycle of Proteus mirabilis . European Journal of Biochemistry 117:171–177
    [Google Scholar]
  13. Hash J. H., Rothlauf M. V. 1967; The N, O-diacetyl-muramidase of Chalaropsis species. Purification and crystallization. Journal of Biological Chemistry 242:5586–5590
    [Google Scholar]
  14. Hebeler H. H., Young F. E. 1976; Chemical composition and turnover of peptidoglycan in Neisseria gonorrhoeae . Journal of Bacteriology 126:1180–1185
    [Google Scholar]
  15. Higashi Y., Strominger J. L., Sweeley C. C. 1967; Structure of a lipid intermediate in cell wall peptidoglycan synthesis: a derivative of a C5S-isoprenoid alcohol. Proceedings of the National Academy of Sciences of the United States of America 57:1878–1884
    [Google Scholar]
  16. Higashi Y., Strominger J. L., Sweeley C. C. 1970; Biosynthesis of the peptidoglycan of bacterial cell walls. XXI: Isolation of free C55-isoprenoid alcohol and of lipid intermediates in peptidoglycan synthesis from Staphylococcus aureus . Journal of Biological Chemistry 245:3697–3702
    [Google Scholar]
  17. Ishino F., Matsuhashi M. 1981; Peptidoglycan synthetic enzyme activities of highly purified penicillin-binding protein 3 in Escherichia coli: a septumforming reaction sequence. Biochemical and Biophysical Research Communications 101:905–911
    [Google Scholar]
  18. Ishino F., Mitsui K., Tamaki S., Matsuhashi M. 1980; Dual enzyme activities of cell wall peptidoglycan synthesis, peptidoglycan transglycosylase and penicillin-sensensitive transpeptidase in purified preparations of Escherichia coli penicillin-binding protein 1 A. Biochemical and Biophysical Research Communications 97:287–293
    [Google Scholar]
  19. Lear A. L., Perkins H. R. 1983; Degrees of O-acetylation and cross-linking of the peptidoglycan of Neisseria gonorrhoeae during growth. Journal of General Microbiology 129:885–888
    [Google Scholar]
  20. Leyh-Bouille M., Ghuysen J.-M., Bonaly R., Nieto M., Perkins H. R., Schleifer K. H., Kandler O. 1970; Substrate requirements of the Streptomyces albus G DD-carboxypeptidase. Biochemistry 9:2961–2970
    [Google Scholar]
  21. Martin H. H., Gmeiner J. 1979; Modification of peptidoglycan structure by penicillin action in cell walls of Proteus mirabilis . European Journal of Biochemistry 95:487–495
    [Google Scholar]
  22. de Pedro M. A., Schwarz U. 1981; Hetero-geneity of newly inserted and pre-existing murein in the sacculus of Escherichia coli . Proceedings of the National Academy of Sciences of the United States of America 78:5856–5866
    [Google Scholar]
  23. Rosenthal R. S. 1979; Release of soluble peptidoglycan from growing gonococci: hexaminidase and amidase activities. Infection and Immunity 24:869–878
    [Google Scholar]
  24. Rosenthal R. S., Wright R. M., Sinha R. K. 1980; Extent of peptide cross-linking in the peptidoglycan of Neisseria gonorrhoeae . Infection and Immunity 28:867–875
    [Google Scholar]
  25. Schleifer K. H., Kandler O. 1972; Peptidoglycan types of bacterial cell walls and their taxonomic implications. Bacteriological Reviews 36:407–477
    [Google Scholar]
  26. Siewert G., Strominger J. L. 1968; Biosynthesis of the peptidoglycan of bacterial cell walls. Formation of the isoglutamine amine group in the cell walls of Staphylococcus aureus . Journal of Biological Chemistry 243:783–790
    [Google Scholar]
  27. Suzuki H., van Heijenoort Y., Tamura T., Mizoguchi J., Hirota Y., van Heijenoort J. 1980; In vitro peptidoglycan polymerization catalysed by penicillin binding protein 1B of Escherichia coli K12. FEBS Letters 110:245–249
    [Google Scholar]
  28. Swim S. C., Gfell A., Wilde C. E., Rosenthal R. S. 1983; Strain distribution in extents of lysozyme resistance and O-acetylation of gonococcal peptidoglycan determined by high performance liquid chromatography. Infection and Immunity 42:446–452
    [Google Scholar]
  29. Trevelyan W. E., Proctor D. P., Harrison J. S. 1950; Detection of sugars on paper chromatograms. Nature London 166:444–445
    [Google Scholar]
  30. Ward J. B. 1974; The synthesis of peptidoglycan in an autolysin deficient mutant of Bacillus licheniformis NCTC 6346 and the effects of β-lactam antibiotics, bacitracin and vancomycin. Biochemical Journal 141:227–241
    [Google Scholar]
  31. Ward J. B., Perkins H. R. 1973; The direction of glycan synthesis in a bacterial peptidoglycan. Biochemical Journal 135:721–728
    [Google Scholar]
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