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Published on: May 1, 2019
Homologous VapC Toxins Inhibit Translation and Cell Growth by Sequence-Specific Cleavage of tRNAfMet
Lauren R Walling1, J Scott Butler2,3,4
1Department of Microbiology and Immunology, University of Rochester Medical Center, Rochester, New York, USA.
Abstract:
Type II toxin-antitoxin (TA) systems play a critical role in the establishment and maintenance of bacterial dormancy. They are composed of a protein toxin and its cognate protein antitoxin. They function to regulate growth under conditions of stress, such as starvation or antibiotic treatment. As cellular proteases degrade the antitoxin, which normally binds and neutralizes the toxin, this frees the toxin to act on its cellular targets and arrest bacterial growth. TA systems are of particular concern in regard to pathogenic organisms, such as nontypeable Haemophilus influenzae (NTHi), as dormancy may lead to chronic infections and failure of antibiotic treatment. Many targets of VapC toxins have not been identified, to date, and this knowledge is crucial to understanding how toxins control the establishment and maintenance of bacterial dormancy. Accordingly, we characterized the target specificity of the VapC toxins from the two paralogous NTHi vapBC TA systems. RNA sequencing and Northern blot analysis revealed that VapC1 and VapC2 cleave tRNAfMet in the anticodon loop. Overexpression of tRNAfMet suppresses VapC toxicity, suggesting that translation inhibition results from the depletion of tRNAfMet These experiments also identified base pairs in the tRNAfMet anticodon stem that play a key role in VapC-specific cleavage of the tRNA. Together these findings suggest the potential for NTHi VapC1 and VapC2 to induce dormancy by sequence-specific cleavage of tRNAfMetIMPORTANCE Bacterial persistence is a significant concern in regard to pathogenic organisms, such as nontypeable Haemophilus influenzae, as it can result in recurrent and chronic infections. Toxin-antitoxin systems can lead to persistence by causing bacteria to enter a slow-growing state that renders them antibiotic tolerant. Type II toxin components affect a wide variety of bacterial targets in order to elicit dormancy, and for many toxin-antitoxin systems, these mechanisms are not well understood. Thus, in order to understand how vapBC toxin-antitoxin systems cause dormancy, it is crucial to investigate the substrate specificity of VapC toxins. This study identifies the target of the VapC1 and VapC2 toxins from NTHi and takes important steps toward understanding the specificity of these toxins for their tRNA target.
Insights
Type II toxin-antitoxin systems, like those in nontypeable Haemophilus influenzae (NTHi), induce bacterial dormancy. Researchers found VapC toxins specifically cleave tRNA, inhibiting translation and causing persistence.
Area of Science:
- Microbiology
- Molecular Biology
- Bacterial Genetics
Background:
- Type II toxin-antitoxin (TA) systems regulate bacterial dormancy under stress.
- Nontypeable Haemophilus influenzae (NTHi) persistence is linked to TA systems, causing chronic infections.
- Understanding VapC toxin targets is crucial for deciphering bacterial dormancy mechanisms.
Purpose of the Study:
- Characterize the target specificity of VapC toxins from NTHi.
- Investigate how VapC toxins contribute to bacterial dormancy and persistence.
Main Methods:
- RNA sequencing and Northern blot analysis were used to identify toxin targets.
- Toxin-antitoxin (TA) systems and VapC toxins were studied in NTHi.
- tRNA (transfer RNA) cleavage assays were performed.
Main Results:
- VapC1 and VapC2 toxins were found to cleave tRNAfMet in the anticodon loop.
- Overexpression of tRNAfMet suppressed VapC toxicity, indicating translation inhibition.
- Specific base pairs in the tRNAfMet anticodon stem are critical for VapC cleavage.
Conclusions:
- NTHi VapC1 and VapC2 toxins induce dormancy by sequence-specific cleavage of tRNAfMet.
- This tRNA cleavage inhibits bacterial translation, contributing to persistence.
- Findings advance understanding of TA systems and bacterial dormancy in NTHi.
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