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A 50S ribosomal subunit precursor particle is a substrate for the ErmC methyltransferase in Staphylococcus aureus
W Scott Champney1, Harold S Chittum, Craig L Tober
1Department of Biochemistry and Molecular Biology, J H Quillen College of Medicine, East Tennessee State University, Johnson City, TN 37614, USA. champney@etsu.edu
Abstract:
Macrolide antibiotics like erythromycin can induce the synthesis of a specific 23S rRNA methyltransferase which confers resistance to cells containing the erm gene. Erythromycin inhibits both protein synthesis and the formation of 50S subunits in bacterial cells. We have tested the idea that the 50S precursor particle that accumulates in antibiotic-treated Staphylococcus aureus cells is a substrate for the methyltransferase enzyme. Pulse-chase labeling studies were conducted to examine the rates of ribosomal subunit formation in control and erythromycin-induced cells. Erythromycin binding to 50S subunits was examined under the same conditions. The rate of 50S subunit formation was reduced for up to 30 min after antibiotic addition, and erythromycin binding was substantial at this time. A nuclease protection assay was used to examine the methylation of adenine 2085 in 23S rRNA after induction. A methyl-labeled protected RNA sequence was found to appear in cells 30 min after induction. This protected sequence was found in both 50S subunits and in a subunit precursor particle sedimenting at about 30S in sucrose gradients. 23S rRNA isolated from 50S subunits of cells could be labeled by a ribosome-associated methlytransferase activity, with (3)H-S-adenosylmethionine as a substrate. 50S subunits were not a substrate for the enzyme, but the 30S gradient region from erythromycin-treated cells contained a substrate for this activity. These findings are consistent with a model that suggests that antibiotic inhibition of 50S formation leads to the accumulation of a precursor whose 23S rRNA becomes methylated by the induced enzyme. The methylated rRNA will preclude erythromycin binding; thus, assembly of the particle and translation become insensitive to the inhibitory effects of the drug.
Insights
Erythromycin antibiotic resistance in bacteria is mediated by a methyltransferase enzyme. This enzyme methylates 23S rRNA in precursor 50S ribosomal subunits, preventing further antibiotic binding and conferring resistance.
Area of Science:
- Microbiology
- Molecular Biology
- Antibiotic Resistance
Background:
- Macrolide antibiotics, such as erythromycin, induce 23S rRNA methyltransferase synthesis, conferring resistance via the erm gene.
- Erythromycin inhibits bacterial protein synthesis and 50S ribosomal subunit formation.
Purpose of the Study:
- To investigate if the 50S ribosomal subunit precursor particle accumulating in erythromycin-treated Staphylococcus aureus is a substrate for the methyltransferase enzyme.
- To elucidate the mechanism of erythromycin resistance induction.
Main Methods:
- Pulse-chase labeling studies to assess ribosomal subunit formation rates.
- Erythromycin binding assays to 50S subunits.
- Nuclease protection assays to detect 23S rRNA methylation.
- Sucrose gradient centrifugation to analyze ribosomal particles.
- In vitro methylation assays using ribosome-associated methyltransferase activity.
Main Results:
- Erythromycin treatment reduced 50S subunit formation and increased erythromycin binding to existing subunits.
- A methylated adenine 2085 in 23S rRNA appeared 30 minutes post-induction, found in both 50S subunits and a 30S precursor particle.
- The methyltransferase activity methylated 23S rRNA from 50S subunits but not the subunits themselves.
- A substrate for the methyltransferase was identified in the 30S gradient fraction from erythromycin-treated cells.
Conclusions:
- Antibiotic-induced inhibition of 50S subunit formation leads to the accumulation of a precursor particle.
- The 23S rRNA within this precursor particle is methylated by the induced enzyme.
- Methylated rRNA prevents erythromycin binding, rendering particle assembly and translation insensitive to the drug.