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Updated: Mar 16, 2026

Visualizing and Quantifying Endonuclease-Based Site-Specific DNA Damage
Published on: August 21, 2021
RNA damage in biological conflicts and the diversity of responding RNA repair systems
A Maxwell Burroughs1, L Aravind2
1National Center for Biotechnology Information, National Library of Medicine, National Institutes of Health, Bethesda, MD 20894, USA.
Abstract:
RNA is targeted in biological conflicts by enzymatic toxins or effectors. A vast diversity of systems which repair or 'heal' this damage has only recently become apparent. Here, we summarize the known effectors, their modes of action, and RNA targets before surveying the diverse systems which counter this damage from a comparative genomics viewpoint. RNA-repair systems show a modular organization with extensive shuffling and displacement of the constituent domains; however, a general 'syntax' is strongly maintained whereby systems typically contain: a RNA ligase (either ATP-grasp or RtcB superfamilies), nucleotidyltransferases, enzymes modifying RNA-termini for ligation (phosphatases and kinases) or protection (methylases), and scaffold or cofactor proteins. We highlight poorly-understood or previously-uncharacterized repair systems and components, e.g. potential scaffolding cofactors (Rot/TROVE and SPFH/Band-7 modules) with their respective cognate non-coding RNAs (YRNAs and a novel tRNA-like molecule) and a novel nucleotidyltransferase associating with diverse ligases. These systems have been extensively disseminated by lateral transfer between distant prokaryotic and microbial eukaryotic lineages consistent with intense inter-organismal conflict. Components have also often been 'institutionalized' for non-conflict roles, e.g. in RNA-splicing and in RNAi systems (e.g. in kinetoplastids) which combine a distinct family of RNA-acting prim-pol domains with DICER-like proteins.
Insights
Biological conflicts involve RNA damage by toxins, but diverse repair systems are emerging. Comparative genomics reveals modular RNA repair systems with conserved components, disseminated by lateral gene transfer.
Area of Science:
- Molecular Biology
- Genomics
- Biochemistry
Background:
- Enzymatic toxins and effectors target RNA in biological conflicts.
- A wide array of RNA damage repair systems has recently been identified.
- Understanding these systems is crucial for comprehending cellular defense mechanisms.
Purpose of the Study:
- To summarize known RNA-targeting effectors and their modes of action.
- To survey diverse RNA repair systems using a comparative genomics approach.
- To investigate the modular organization and evolutionary dissemination of RNA repair pathways.
Main Methods:
- Literature review of RNA effectors and repair systems.
- Comparative genomics analysis of RNA repair system components.
- Identification of novel repair system components and their associated molecules.
Main Results:
- RNA repair systems exhibit modular organization with conserved domains (RNA ligases, nucleotidyltransferases, modifying enzymes, scaffolds).
- Novel components like Rot/TROVE, SPFH/Band-7, and associated non-coding RNAs (YRNAs, tRNA-like) were identified.
- Extensive lateral gene transfer explains the dissemination of these systems across diverse lineages.
Conclusions:
- RNA repair systems are highly conserved yet modular, reflecting intense inter-organismal conflict.
- Components of these systems have been repurposed for cellular processes like RNA splicing and RNA interference.
- The study highlights the evolutionary dynamics and functional versatility of RNA repair mechanisms.
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