Target intelligence / Profile preview

Poly(A)-specific ribonuclease (PARN)

Target
PARN
Molecular classification
Enzyme, 3′–5′ exonuclease, Member of the DEDD superfamily of exonucleases[2][1]
01

Overview

Poly(A)-specific ribonuclease (PARN) is a multi-domain 3′–5′ exoribonuclease that catalyzes the removal of poly(A) tails from the 3’ ends of mRNAs, thereby regulating mRNA stability and translation in eukaryotic cells[1][2][5]. PARN is characterized by its processive, poly(A)-specific exonuclease activity, a requirement for divalent cations (e.g., Mg²⁺) for catalysis, and unique abilities to bind the mRNA 5′ cap and poly(A) tail simultaneously, which enhances processivity and regulation[1][2][3][6]. Structurally, PARN contains several RNA-binding domains—an R3H domain, a nuclease domain, and an RNA recognition motif (RRM)—and exists predominantly as a homodimer, with dimerization essential for catalytic activity[1][2]. Beyond deadenylation, PARN is also involved in telomere maintenance, non-coding RNA maturation, ribosome biogenesis, and regulation of the p53 pathway[4][5]. Dysregulation of PARN expression or function has been reported in various cancers and may contribute to other diseases through defects in RNA processing and genome stability[4][5]. Clinically, PARN is regarded as an enzymatic target of biological interest, but no approved drugs or clinical inhibitors are currently known.

Other names
Poly(A)-specific ribonucleasePARNDeadenylating nucleaseDeadenylation nucleasePolyadenylate-specific ribonucleaseDANDKCB6PFBMFT4
02

Mechanism of action

Drugs or molecules modulating PARN would typically act by acting as competitive inhibitors of the active site, disrupting its deadenylation activity, or interfering with essential protein-protein/RNA interactions[1][2]. No specific mechanisms for approved drugs described in the literature.

03

Biological functions

mRNA deadenylation (removal of poly(A) tails)[1][2]Regulation of mRNA stability/decay[5]Regulation of translation efficiency[1][2]5' cap-binding (modulation of processivity)[1][2]Telomere maintenance[4]Non-coding RNA maturation and trimming of miRNAs[4]Ribosome biogenesis[4]Regulation of TP53 (p53) pathway[5][4]
04

Disease associations

Cancer (deregulated in solid and hematologic malignancies)[4][5]Telomere syndromes (implicated by role in telomere maintenance)[4]Other (potential role in diseases of RNA processing[4])
05

Safety considerations

Potential for broad impact on global mRNA stability and translation, risking toxicity if systemically inhibitedPossible effects on embryonic development and cell proliferation (based on animal and cell studies)[4][5]Risks of impaired telomere maintenance and ribosome biogenesis[4]
06

Biomarkers

Altered PARN expression/protein levels have been observed in cancer, but specific validated biomarkers for clinical use are not established[4][5]

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