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Updated: Jan 21, 2026

Genotyping of Staphylococcus aureus by Ribosomal Spacer PCR RS-PCR
Published on: November 4, 2016
Genome-Wide Screening for Identification of Novel Toxin-Antitoxin Systems in Staphylococcus aureus
Fuminori Kato1,2, Satoshi Yoshizumi2, Yoshihiro Yamaguchi2,3,4
1Graduate School of Biomedical and Health Sciences, Hiroshima University, Hiroshima, Japan.
Abstract:
Toxin-antitoxin (TA) systems consist of toxin-inhibiting diverse cellular functions (e.g., DNA replication, transcription, and translation) and a noncoding RNA or protein antitoxin. TA systems are associated with various cellular events, such as stress responses, programmed cell death, and bacterial pathogenicity. Recent advances in genome sequencing and bioinformatics research have demonstrated that most bacteria harbor various kinds of TA modules on their chromosomes; however, there is little understanding of chromosomally encoded TA systems in the Gram-positive pathogen Staphylococcus aureus Here, we report on newly discovered S. aureus TA systems, each of which is composed of two proteins. Manual search and gene operon prediction analysis identified eight 2-gene operons as potential candidates for TA systems. Subsequently, using an Escherichia coli host killing and rescue assay, we demonstrated that four of the eight candidates worked as TA systems, designated tsaAT, tsbAT, tscAT, and tsdAT Moreover, the TsaT, TsbT, TscT, and TsdT toxins inhibited S. aureus growth, and the toxicity of TsbT was neutralized by coexpressing the tsbA gene in the native host, S. aureus Further, the bioinformatics analysis of the gene clusters revealed that TsaAT, TsbAT, TscAT, and TsdAT did not exhibit sequence similarity to known bacterial TA systems, and their homologues were present only within Staphylococcus species and not among any other bacteria. Our results further advance not only the understanding of S. aureus TA systems but also the study of unannotated TA systems in various bacterial species.IMPORTANCE Recent advances in genome sequencing and bioinformatics research have demonstrated that most pathogenic bacteria harbor a large number of chromosomally encoded toxin-antitoxin (TA) modules. However, little is known about the TA systems in S. aureus Here, we newly identified four S. aureus TA systems using a combination of manual base-by-base screening and functional analysis in E. coli Moreover, all toxins of the identified TA systems caused growth inhibition in the native host S. aureus Although the newly identified TA systems did not exhibit sequence similarity with known bacterial TA systems, their orthologues were conserved only among other Staphylococcus species, indicating their uniqueness to staphylococci. Our approach opens the possibility for studying unannotated TA systems in various bacterial species.
Insights
Researchers discovered four novel toxin-antitoxin (TA) systems in *Staphylococcus aureus*. These unique TA systems, unique to staphylococci, inhibit bacterial growth and offer new avenues for studying unannotated TA systems.
Area of Science:
- Microbiology and Molecular Biology
- Bacterial Genetics and Pathogenesis
Background:
- Toxin-antitoxin (TA) systems are crucial for bacterial survival, stress response, and pathogenicity.
- Most bacteria possess numerous chromosomally encoded TA modules, yet understanding of these systems in *Staphylococcus aureus* is limited.
- TA systems regulate essential cellular processes like DNA replication, transcription, and translation.
Purpose of the Study:
- To identify and characterize novel chromosomally encoded toxin-antitoxin systems in *Staphylococcus aureus*.
- To functionally validate newly discovered TA systems using a heterologous host-based assay.
- To investigate the evolutionary conservation and uniqueness of identified TA systems within the *Staphylococcus* genus.
Main Methods:
- Manual screening of *S. aureus* genomes and gene operon prediction to identify potential TA candidates.
- Utilized an *Escherichia coli* host-based killing and rescue assay to confirm TA system functionality.
- Bioinformatic analysis of gene clusters to assess sequence similarity and evolutionary conservation.
Main Results:
- Eight potential two-gene operons were identified as candidate TA systems.
- Four candidates, designated *tsaAT*, *tsbAT*, *tscAT*, and *tsdAT*, were functionally validated as TA systems.
- The toxins TsaT, TsbT, TscT, and TsdT inhibited *S. aureus* growth, with TsbT toxicity neutralized by TsbA.
- Identified TA systems lack sequence similarity to known bacterial TA systems and are conserved exclusively within *Staphylococcus* species.
Conclusions:
- Four novel, species-specific toxin-antitoxin systems (*tsaAT*, *tsbAT*, *tscAT*, *tsdAT*) were discovered in *Staphylococcus aureus*.
- These findings expand the known repertoire of TA systems in *S. aureus* and highlight their potential role in staphylococcal biology.
- The methodology employed provides a framework for discovering unannotated TA systems in other bacterial species.
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