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Updated: Apr 21, 2026

Isolation of Translating Ribosomes Containing Peptidyl-tRNAs for Functional and Structural Analyses
Published on: February 25, 2011
The general mode of translation inhibition by macrolide antibiotics
Krishna Kannan1, Pinal Kanabar2, David Schryer3
1Center for Pharmaceutical Biotechnology, University of Illinois, Chicago, IL 60607;
Abstract:
Macrolides are clinically important antibiotics thought to inhibit bacterial growth by impeding the passage of newly synthesized polypeptides through the nascent peptide exit tunnel of the bacterial ribosome. Recent data challenged this view by showing that macrolide antibiotics can differentially affect synthesis of individual proteins. To understand the general mechanism of macrolide action, we used genome-wide ribosome profiling and analyzed the redistribution of ribosomes translating highly expressed genes in bacterial cells treated with high concentrations of macrolide antibiotics. The metagene analysis indicated that inhibition of early rounds of translation, which would be characteristic of the conventional view of macrolide action, occurs only at a limited number of genes. Translation of most genes proceeds past the 5'-proximal codons and can be arrested at more distal codons when the ribosome encounters specific short sequence motifs. The problematic sequence motifs are confined to the nascent peptide residues in the peptidyl transferase center but not to the peptide segment that contacts the antibiotic molecule in the exit tunnel. Therefore, it appears that the general mode of macrolide action involves selective inhibition of peptide bond formation between specific combinations of donor and acceptor substrates. Additional factors operating in the living cell but not functioning during in vitro protein synthesis may modulate site-specific action of macrolide antibiotics.
Insights
Macrolide antibiotics selectively inhibit bacterial protein synthesis by targeting specific peptide sequences, not just the ribosome exit tunnel. This mechanism explains how these crucial drugs impede bacterial growth.
Area of Science:
- Microbiology
- Molecular Biology
- Pharmacology
Background:
- Macrolides are essential antibiotics.
- They are believed to inhibit bacterial growth by blocking polypeptide passage through the ribosome's nascent peptide exit tunnel.
- Recent studies suggest macrolides may affect the synthesis of individual proteins differently.
Purpose of the Study:
- To elucidate the general mechanism of macrolide antibiotic action.
- To investigate how macrolides affect translation of highly expressed genes in bacteria.
Main Methods:
- Genome-wide ribosome profiling was employed.
- Ribosome redistribution was analyzed in bacterial cells treated with high macrolide concentrations.
- Metagene analysis was used to assess translation inhibition patterns.
Main Results:
- Macrolide-induced translation inhibition primarily occurs at distal codons, not early translation rounds, for most genes.
- Specific short sequence motifs within the nascent peptide are identified as arrest sites.
- These motifs interact with the peptidyl transferase center, not the antibiotic-binding site in the exit tunnel.
Conclusions:
- Macrolides generally act by selectively inhibiting peptide bond formation between specific donor and acceptor substrates.
- The findings challenge the conventional view of macrolide action solely through exit tunnel obstruction.
- Intracellular factors may modulate the site-specific effects of macrolides in living cells.
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