Inhibition of cell wall synthesis and acylation of the penicillin binding proteins during prolonged exposure of growing Streptococcus pneumoniae to benzylpenicillin
- 1 September 1985
- journal article
- research article
- Published by Wiley in European Journal of Biochemistry
- Vol. 151 (3), 475-483
- https://doi.org/10.1111/j.1432-1033.1985.tb09126.x
Abstract
Growing cultures of an autolysis-defective pneumococcal mutant were exposed to [3H]benzylpenicillin at various multiples of the minimal inhibitory concentration and incubated until the growth of the cultures was halted. During the process of growth inhibition, we determined the rates and degree of acylation of the five penicillin-binding proteins (PBPs) and the rates of peptidoglycan incorporation, protein synthesis, and turbidity increase. The time required for the onset of the inhibitory effects of benzylpenicillin was inversely related to the concentration of the antibiotic, and inhibition of peptidoglycan incorporation always preceded inhibition of protein synthesis and growth. When cultures first started to show the onset of growth inhibition, the same characteristic fraction of each PBP was in the acylated form in all cases, irrespective of the antibiotic concentration. Apparently, saturation of one or more PBPs with the antibiotic beyond these threshold levels is needed to bring about interference with normal peptidoglycan production and cellular growth. Although it was not possible to correlate the inhibition of cell wall synthesis or cell growth with the degree of acylation (percentage saturation) of any single PBP, there was a correlation between the amount of peptidoglycan synthesized and the actual amount of PBP 2b that was not acylated. In cultures exposed to benzylpenicillin concentrations greater than eight times the minimal inhibitory concentration, the rates of peptidoglycan incorporation underwent a rapid decline when bacterial growth stopped. However, in cultures exposed to lower concentrations of benzylpenicillin (one to six times the minimal inhibitory concentration) peptidoglycan synthesis continued at constant rate for prolonged periods, after the turbidity had ceased to increase. We conclude that inhibition of bacterial growth does not require a complete inhibition or even a major decline in the rate of peptidoglycan incorporation. Rather, inhibition of growth must be caused by an as yet undefined process that stops cell division when the rate of incorporation of peptidoglycan (or synthesis of protein) falls below a critical value.This publication has 45 references indexed in Scilit:
- Synthesis of penicillin-binding proteins in penicillin-treatedStreptococcus pneumoniaeFEMS Microbiology Letters, 1984
- Interaction of β‐Lactam Antibiotics with Penicillin‐Binding Proteins from Bacillus megateriumEuropean Journal of Biochemistry, 1982
- Intrinsic resistance to β‐lactam antibiotics in staphylococcus aureusFEBS Letters, 1980
- THE PENICILLIN-BINDING PROTEINS OF STREPTOCOCCUS PNEUMONIAE GROWN UNDER LYSIS-PERMISSIVE AND LYSIS-PROTECTIVE (TOLERANT) CONDITIONSFEMS Microbiology Letters, 1980
- Bacillus megaterium resistance to cloxacillin accompanied by a compensatory change in penicillin binding proteinsNature, 1979
- Identification of the binding protein which may be the target of penicillin action in Bacillus megateriumNature, 1978
- Biosynthesis of Peptidoglycan in Wall plus Membrane Preparations from Micrococcus luteus: Direction of Chain Extension, Length of Chains and Effect of Penicillin on Cross-linkingJournal of General Microbiology, 1977
- On the physiological functions of teichoic acidsJournal of Supramolecular Structure, 1975
- Inhibition by penicillin of the incorporation and cross‐linking of L‐lysine in intact cells of Micrococcus luteusFEBS Letters, 1974
- Biosynthesis of peptidoglycan by a cell wall preparation of Staphylococcus aureus and its inhibition by penicillinBiochemical and Biophysical Research Communications, 1972