Binding of novel macrolide structures to macrolides-lincosamides-streptogramin B-resistant ribosomes inhibits protein synthesis and bacterial growth
- 1 July 1989
- journal article
- research article
- Published by American Society for Microbiology in Antimicrobial Agents and Chemotherapy
- Vol. 33 (7) , 1058-1066
- https://doi.org/10.1128/aac.33.7.1058
Abstract
Dimethylation of adenine 2058 in 23S rRNA renders bacteria resistant to macrolides, lincosamides, and streptogramin B (MLS resistance), because the antibiotic binding site on the altered 50S ribosomal subunit is no longer accessible. We now report that certain 6-O-methyl-11,12-cyclic carbamate derivatives of erythromycin are able to bind to dimethylated MLS-resistant 50S ribosomal subunits, thus inhibiting protein synthesis and cell growth. One of these novel structures, an 11-deoxy-11-(carboxyamino)-6-O-methylerythromycin A 11,12-(cyclic ester) derivative, structure 1a, was studied in detail. It inhibited in vitro protein synthesis in extracts prepared from both susceptible and MLS-resistant Bacillus subtilis with 50% inhibitory concentrations of 0.4 and 20 microM, respectively. The derivative bound specifically to a single site on the 50S subunit of MLS-resistant ribosomes prepared from B. subtilis and Staphylococcus aureus, and no binding to 30S subunits was observed. The association rate constant of derivative 1a with sensitive and resistant ribosomes was 100- and 500-fold slower, respectively, than that of the parent compound, erythromycin, with sensitive ribosomes. The dissociation rate constant of 1a from sensitive and resistant ribosomes was 50- to 100-fold slower than the rate of erythromycin dissociation from sensitive ribosomes. Furthermore, 1a binding to sensitive 50S subunits led to induction of ermC and ermD, while binding to resistant 50S subunits did not, showing that perturbation of sensitive and resistant 50S subunit function by 1a differs. These data demonstrated that 1a is unique in its interaction with MLS-resistant ribosomes and that this interaction causes a novel allosteric perturbation of ribosome function.This publication has 34 references indexed in Scilit:
- Aromatic rings act as hydrogen bond acceptorsJournal of Molecular Biology, 1988
- Reversion from Erythromycin Dependence in Escherichia coli: Strains Altered in Ribosomal Sub-unit Association and Ribosome AssemblyMicrobiology, 1988
- Distribution of erythromycin esterase and rRNA methylase genes in members of the family Enterobacteriaceae highly resistant to erythromycinAntimicrobial Agents and Chemotherapy, 1987
- Novel mechanism for plasmid-mediated erythromycin resistance by pNE24 from Staphylococcus epidermidisAntimicrobial Agents and Chemotherapy, 1986
- Translational Attenuation: The Regulation of Bacterial Resistance to the Macrolide-Lincosamide-Streptogramin B AntibioticCritical Reviews in Biochemistry, 1984
- Interaction between the erythromycin and chloramphenicol binding sites on the Escherichia coli ribosomeBiochemistry, 1977
- The distance between two functionally significant regions of the 50 S Escherichia coli ribosome: the erythromycin binding site and proteinsJournal of Molecular Biology, 1976
- Binding of N -Substituted Erythromycylamines to RibosomesAntimicrobial Agents and Chemotherapy, 1976
- Binding of [ 14 C]Erythromycin to Escherichia coli RibosomesAntimicrobial Agents and Chemotherapy, 1974
- The intermolecular complex of erythromycin and ribosomeJournal of Molecular Biology, 1969