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Identification of Footprints of RNA:Protein Complexes via RNA Immunoprecipitation in Tandem Followed by Sequencing (RIPiT-Seq)
Published on: July 10, 2019
New connections in the prokaryotic toxin-antitoxin network: relationship with the eukaryotic nonsense-mediated RNA
Vivek Anantharaman1, L Aravind
1National Center for Biotechnology Information, National Library of Medicine, National Institutes of Health, Bethesda, MD 20894, USA.
Background:
Several prokaryotic plasmids maintain themselves in their hosts by means of diverse post-segregational cell killing systems. Recent findings suggest that chromosomally encoded copies of toxins and antitoxins of post-segregational cell killing systems - such as the RelE system - might function as regulatory switches under stress conditions. The RelE toxin cleaves ribosome-associated transcripts, whereas another post-segregational cell killing toxin, ParE, functions as a gyrase inhibitor.
Results:
Using sequence profile analysis we were able unify the RelE- and ParE-type toxins with several families of small, uncharacterized proteins from diverse bacteria and archaea into a single superfamily. Gene neighborhood analysis showed that the majority of these proteins were encoded by genes in characteristic neighborhoods, in which genes encoding toxins always co-occurred with genes encoding transcription factors that are also antitoxins. The transcription factors accompanying the RelE/ParE superfamily may belong to unrelated or distantly related superfamilies, however. We used this conserved neighborhood template to transitively search genomes and identify novel post-segregational cell killing-related systems. One of these novel systems, observed in several prokaryotes, contained a predicted toxin with a PilT-N terminal (PIN) domain, which is also found in proteins of the eukaryotic nonsense-mediated RNA decay system. These searches also identified novel transcription factors (antitoxins) in post-segregational cell killing systems. Furthermore, the toxin Doc defines a potential metalloenzyme superfamily, with novel representatives in bacteria, archaea and eukaryotes, that probably acts on nucleic acids.
Conclusions:
The tightly maintained gene neighborhoods of post-segregational cell killing-related systems appear to have evolved by in situ displacement of genes for toxins or antitoxins by functionally equivalent but evolutionarily unrelated genes. We predict that the novel post-segregational cell killing-related systems containing a PilT-N terminal domain toxin and the eukaryotic nonsense-mediated RNA decay system are likely to function via a common mechanism, in which the PilT-N terminal domain cleaves ribosome-associated transcripts. The core of the eukaryotic nonsense-mediated RNA decay system has probably evolved from a post-segregational cell killing-related system.
Insights
Post-segregational cell killing systems, including RelE and ParE toxins, were unified into a superfamily. Novel systems with PilT-N terminal domain toxins suggest a common mechanism and potential prokaryotic origin for eukaryotic systems.
Area of Science:
- Microbiology
- Molecular Biology
- Evolutionary Biology
Background:
- Prokaryotic plasmids utilize post-segregational cell killing systems for maintenance.
- Toxins like RelE (transcript cleavage) and ParE (gyrase inhibition) are key components.
- These systems may act as regulatory switches under stress.
Purpose of the Study:
- To unify diverse toxin-antitoxin families into a single superfamily.
- To identify novel post-segregational cell killing systems using gene neighborhood analysis.
- To investigate the evolutionary origins of these systems and their relation to eukaryotic pathways.
Main Methods:
- Sequence profile analysis to classify protein families.
- Gene neighborhood analysis to identify co-occurring toxin and antitoxin genes.
- Transitive genome searching using conserved neighborhood templates.
Main Results:
- RelE- and ParE-type toxins were unified with uncharacterized proteins into a superfamily.
- Conserved gene neighborhoods revealed co-occurrence of toxins and transcription factor antitoxins.
- Novel systems were identified, including one with a PilT-N terminal (PIN) domain toxin.
- The toxin Doc was identified as a potential nucleic acid-acting metalloenzyme superfamily.
Conclusions:
- Post-segregational cell killing systems evolve through gene displacement, incorporating unrelated but functionally equivalent genes.
- Novel PIN domain-containing systems likely cleave ribosome-associated transcripts, similar to eukaryotic nonsense-mediated RNA decay.
- The eukaryotic nonsense-mediated RNA decay system may have evolved from prokaryotic post-segregational cell killing systems.
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