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Updated: Feb 22, 2026

A Nonsequencing Approach for the Rapid Detection of RNA Editing
Published on: April 21, 2022
ADAR RNA editing in human disease; more to it than meets the I
Angela Gallo1, Dragana Vukic2, David Michalík2
1Oncohaematology Department, Ospedale Pediatrico Bambino Gesù (IRCCS), Viale di San Paolo, 15, 00146, Rome, Italy.
Insights
ADAR enzymes are crucial for RNA editing, with mutations in ADAR1 linked to autoimmune diseases like Aicardi-Goutières Syndrome and ADAR2 mutations associated with neurological and psychiatric conditions.
Area of Science:
- Biochemistry
- Genetics
- Neuroscience
Background:
- Adenosine deaminases acting on RNA (ADARs) are enzymes that modify RNA.
- ADAR1 is broadly expressed and edits double-stranded RNA (dsRNA); ADAR2 is mainly in the brain and edits specific sites.
Purpose of the Study:
- To review the roles of ADAR1 and ADAR2 in human diseases.
- To highlight the link between ADAR mutations and various pathologies.
Main Methods:
- Review of existing literature on ADAR structures, functions, and disease associations.
- Analysis of mutation effects on ADAR activity and resulting phenotypes.
Main Results:
- ADAR1 mutations cause Aicardi-Goutières Syndrome, an interferonopathy. Upregulated ADAR1 is observed in cancers.
- ADAR2 mutations are linked to epilepsy, autism, neurodegeneration (ALS), and brain tumors.
- ADAR2 regulates glutamate receptors and is connected to the circadian clock and sleep.
Conclusions:
- ADAR1 dysfunction contributes to inflammatory and autoimmune diseases.
- ADAR2 dysfunction is implicated in neurological, psychiatric, and neurodegenerative disorders.
- ADAR enzymes are critical for maintaining cellular homeostasis and preventing disease.
Abstract:
We review the structures and functions of ADARs and their involvements in human diseases. ADAR1 is widely expressed, particularly in the myeloid component of the blood system, and plays a prominent role in promiscuous editing of long dsRNA. Missense mutations that change ADAR1 residues and reduce RNA editing activity cause Aicardi-Goutières Syndrome, a childhood encephalitis and interferonopathy that mimics viral infection and resembles an extreme form of Systemic Lupus Erythmatosus (SLE). In Adar1 mouse mutant models aberrant interferon expression is prevented by eliminating interferon activation signaling from cytoplasmic dsRNA sensors, indicating that unedited cytoplasmic dsRNA drives the immune induction. On the other hand, upregulation of ADAR1 with widespread promiscuous RNA editing is a prominent feature of many cancers and particular site-specific RNA editing events are also affected. ADAR2 is most highly expressed in brain and is primarily required for site-specific editing of CNS transcripts; recent findings indicate that ADAR2 editing is regulated by neuronal excitation for synaptic scaling of glutamate receptors. ADAR2 is also linked to the circadian clock and to sleep. Mutations in ADAR2 could contribute to excitability syndromes such as epilepsy, to seizures, to diseases involving neuronal plasticity defects, such as autism and Fragile-X Syndrome, to neurodegenerations such as ALS, or to astrocytomas or glioblastomas in which reduced ADAR2 activity is required for oncogenic cell behavior. The range of human disease associated with ADAR1 mutations may extend further to include other inflammatory conditions while ADAR2 mutations may affect psychiatric conditions.
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