Related Experiment Video
Updated: Jun 28, 2025

Measurement of Specific Mycobacterial Mistranslation Rates with Gain-of-function Reporter Systems
Published on: April 26, 2019
Methionyl-tRNA synthetase synthetic and proofreading activities are determinants of antibiotic persistence
Whitney N Wood1,2, Miguel Angel Rubio1, Lorenzo Eugenio Leiva2
1Department of Microbiology, The Ohio State University, Columbus, OH, United States.
Abstract:
Bacterial antibiotic persistence is a phenomenon where bacteria are exposed to an antibiotic and the majority of the population dies while a small subset enters a low metabolic, persistent, state and are able to survive. Once the antibiotic is removed the persistent population can resuscitate and continue growing. Several different molecular mechanisms and pathways have been implicated in this phenomenon. A common mechanism that may underly bacterial antibiotic persistence is perturbations in protein synthesis. To investigate this mechanism, we characterized four distinct metG mutants for their ability to increase antibiotic persistence. Two metG mutants encode changes near the catalytic site of MetRS and the other two mutants changes near the anticodon binding domain. Mutations in metG are of particular interest because MetRS is responsible for aminoacylation both initiator tRNA and elongator tRNA indicating that these mutants could impact translation initiation and/or translation elongation. We observed that all the metG mutants increased the level of antibiotic persistence as did reduced transcription levels of wild type metG. Although, the MetRS variants did not have an impact on MetRS activity itself, they did reduce translation rates. It was also observed that the MetRS variants affected the proofreading mechanism for homocysteine and that these mutants' growth is hypersensitive to homocysteine. Taken together with previous findings, our data indicate that both reductions in cellular Met-tRNA synthetic capacity and reduced proofreading of homocysteine by MetRS variants are positive determinants for bacterial antibiotic persistence.
Insights
Bacterial antibiotic persistence, a survival strategy, is enhanced by mutations in the metG gene. These changes disrupt protein synthesis and homocysteine metabolism, increasing bacterial survival during antibiotic exposure.
Area of Science:
- Microbiology
- Molecular Biology
- Genetics
Background:
- Bacterial antibiotic persistence allows a small subpopulation to survive antibiotic treatment by entering a dormant state.
- Protein synthesis perturbations are a suspected mechanism underlying bacterial antibiotic persistence.
- The metG gene encodes Methionyl-tRNA synthetase (MetRS), crucial for protein synthesis.
Purpose of the Study:
- To investigate the role of metG mutations in bacterial antibiotic persistence.
- To determine if altered MetRS function impacts translation initiation or elongation.
- To explore the link between MetRS activity, homocysteine metabolism, and antibiotic persistence.
Main Methods:
- Characterization of four distinct metG mutants with changes in MetRS catalytic or anticodon binding domains.
- Assessment of antibiotic persistence levels in metG mutants and wild-type strains with reduced metG transcription.
- Analysis of MetRS activity, translation rates, and homocysteine proofreading in mutant strains.
Main Results:
- All four metG mutants and reduced wild-type metG transcription significantly increased antibiotic persistence.
- MetRS variants did not alter MetRS enzymatic activity but reduced overall translation rates.
- MetRS variants impaired homocysteine proofreading, leading to homocysteine hypersensitivity in mutant growth.
Conclusions:
- Disruptions in protein synthesis, specifically through metG mutations, enhance bacterial antibiotic persistence.
- Reduced cellular methionine-tRNA synthetic capacity and impaired homocysteine proofreading by MetRS are key determinants of antibiotic persistence.
More Related Videos
Related Concept Videos
Improving Translational Accuracy
Transcription Attenuation in Prokaryotes
There are several different mechanisms used to attenuate transcription. In ribosome mediated...
tRNA Activation
Proofreading
Errors During Replication are Corrected by the DNA Polymerase...
Mismatch Repair
The Mutator Protein Family Plays a Key Role in DNA Mismatch Repair
The human genome has more than 3 billion base pairs of DNA per cell. Prior to cell division, that vast amount of genetic...
Transfer RNA Synthesis
Each of these chemical modifications is carried by a specific enzyme, post-transcription. All of these enzymes have unique base and site-specificity. Methylation, the most common chemical modification, is carried by at least nine different enzymes, with...

