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Applying an Inducible Expression System to Study Interference of Bacterial Virulence Factors with Intracellular Signaling
Published on: June 25, 2015
Transcriptional cross-activation between toxin-antitoxin systems of Escherichia coli
Villu Kasari1, Toomas Mets, Tanel Tenson
1Institute of Technology, University of Tartu, Nooruse 1, 50411, Tartu, Estonia.
Background:
Bacterial toxin-antitoxin (TA) systems are formed by potent regulatory or suicide factors (toxins) and their short-lived inhibitors (antitoxins). Antitoxins are DNA-binding proteins and auto-repress transcription of TA operons. Transcription of multiple TA operons is activated in temporarily non-growing persister cells that can resist killing by antibiotics. Consequently, the antitoxin levels of persisters must have been dropped and toxins are released of inhibition.
Results:
Here, we describe transcriptional cross-activation between different TA systems of Escherichia coli. We find that the chromosomal relBEF operon is activated in response to production of the toxins MazF, MqsR, HicA, and HipA. Expression of the RelE toxin in turn induces transcription of several TA operons. We show that induction of mazEF during amino acid starvation depends on relBE and does not occur in a relBEF deletion mutant. Induction of TA operons has been previously shown to depend on Lon protease which is activated by polyphospate accumulation. We show that transcriptional cross-activation occurs also in strains deficient for Lon, ClpP, and HslV proteases and polyphosphate kinase. Furthermore, we find that toxins cleave the TA mRNA in vivo, which is followed by degradation of the antitoxin-encoding fragments and selective accumulation of the toxin-encoding regions. We show that these accumulating fragments can be translated to produce more toxin.
Conclusion:
Transcriptional activation followed by cleavage of the mRNA and disproportionate production of the toxin constitutes a possible positive feedback loop, which can fire other TA systems and cause bistable growth heterogeneity. Cross-interacting TA systems have a potential to form a complex network of mutually activating regulators in bacteria.
Insights
Bacterial toxin-antitoxin systems exhibit cross-activation, forming positive feedback loops. This interaction leads to disproportionate toxin production and bistable growth heterogeneity in bacteria.
Area of Science:
- Microbiology
- Molecular Biology
- Bacterial Genetics
Background:
- Bacterial toxin-antitoxin (TA) systems regulate cell growth and survival.
- Antitoxins inhibit toxin activity and repress TA operon transcription.
- Persister cells activate TA operons, increasing toxin levels for antibiotic resistance.
Purpose of the Study:
- To investigate transcriptional cross-activation between different TA systems in Escherichia coli.
- To elucidate the mechanisms underlying TA system interactions and their regulatory roles.
Main Methods:
- Analysis of transcriptional cross-activation between multiple TA systems.
- Investigating the role of toxins in TA operon induction.
- Examining TA system behavior in protease-deficient strains.
- Studying mRNA cleavage and fragment translation in vivo.
Main Results:
- Identified transcriptional cross-activation between various TA systems in E. coli.
- Demonstrated that toxins induce transcription of other TA operons.
- Showed that toxins cleave TA mRNA, leading to selective toxin production.
- Found that cross-activation occurs independently of specific proteases and polyphosphate kinase.
Conclusions:
- Cross-activation of TA systems forms positive feedback loops, enhancing toxin production.
- This mechanism contributes to bistable growth heterogeneity in bacterial populations.
- Interacting TA systems create complex regulatory networks in bacteria.
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