ArticlePLoS pathogens2022
Functional analysis of ADARs in planarians supports a bilaterian ancestral role in suppressing double-stranded RNA-response.
Article in PLoS pathogens, 2022. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 10 papers.
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Who cites it
10 citing papers in PubMed, 38 citations in OpenAlex.
- EndoV does not measurably affect TadA-dependent A-to-I RNA editing inMicrobiology spectrum · 2026Article
- Article
- The Landscape and Regulatory Determinants of A-to-I RNA Editing in Escherichia coli and Pseudomonas aeruginosa Isolated From Patients With Urinary Tract and Ear Infections.The Journal of infectious diseases · 2026Article
- A-to-I mRNA editing recodes hundreds of genes in dozens of species and produces endogenous protein isoforms in bacteria.Nucleic acids research · 2025Article
- A-to-I mRNA editing in bacteria can affect protein sequence, disulfide bond formation, and function.Nucleic acids research · 2025Article
- Host response to Aplysia Abyssovirus 1 in nervous system and gill.Developmental and comparative immunology · 2024Article
- Induction of apoptosis by double-stranded RNA was present in the last common ancestor of cnidarian and bilaterian animals.PLoS pathogens · 2024Article
- ADARs regulate cuticle collagen expression and promote survival to pathogen infection.BMC biology · 2024Article
- The regulation of antiviral innate immunity through non-mFrontiers in immunology · 2023Review
- ADAR2 enzymes: efficient site-specific RNA editors with gene therapy aspirations.RNA (New York, N.Y.) · 2022Review
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Authors and funding
1 author at 1 institution in 2 countries.
Funding
Abstract
ADARs (adenosine deaminases acting on RNA) are known for their adenosine-to-inosine RNA editing activity, and most recently, for their role in preventing aberrant dsRNA-response by activation of dsRNA sensors (i.e., RIG-I-like receptor homologs). However, it is still unclear whether suppressing spurious dsRNA-response represents the ancestral role of ADARs in bilaterians. As a first step to address this question, we identified ADAR1 and ADAR2 homologs in the planarian Schmidtea mediterranea, which is evolutionarily distant from canonical lab models (e.g., flies and nematodes). Our results indicate that knockdown of either planarian adar1 or adar2 by RNA interference (RNAi) resulted in upregulation of dsRNA-response genes, including three planarian rig-I-like receptor (prlr) homologs. Furthermore, independent knockdown of adar1 and adar2 reduced the number of infected cells with a dsRNA virus, suggesting they suppress a bona fide anti-viral dsRNA-response activity. Knockdown of adar1 also resulted in lesion formation and animal lethality, thus attesting to its essentiality. Simultaneous knockdown of adar1 and prlr1 rescued adar1(RNAi)-dependent animal lethality and rescued the dsRNA-response, suggesting that it contributes to the deleterious effect of adar1 knockdown. Finally, we found that ADAR2, but not ADAR1, mediates mRNA editing in planarians, suggesting at least in part non-redundant activities for planarians ADARs. Our results underline the essential role of ADARs in suppressing activation of harmful dsRNA-response in planarians, thus supporting it as their ancestral role in bilaterians. Our work also set the stage to study further and better understand the regulatory mechanisms governing anti-viral dsRNA-responses from an evolutionary standpoint using planarians as a model.
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