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March 12, 20260 citations

A spring-loaded grip-and-pull mechanism for stepwise RNA duplex unwinding by Xrn1.

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JRJunhyuk RheeHCHyeokJin ChoSHSujin Hong

Key Points

  • To elucidate the mechanism of RNA duplex unwinding by the Xrn1 exoribonuclease, focusing on critical active site residues.
  • Identified conserved arginine residues R100 and R101 in Xrn1
  • Conducted charge-conserving substitutions to assess exonuclease activity
  • Used single-molecule Förster resonance energy transfer to measure duplex unwinding steps
  • Substituting R100 and R101 with lysine significantly impairs Xrn1's activity, especially on structured substrates
  • R101K exhibited a more severe defect than R100K
  • Xrn1 unwinds RNA duplexes in about 8-9 base pair increments, indicating a stepwise mechanism

Abstract

Xrn1 is a highly conserved 5'→3' exoribonuclease that plays a central role in RNA turnover and quality control in eukaryotic cells. Although Xrn1 is known to degrade single-stranded RNA in a processive manner, the mechanism by which it engages and unwinds structured RNA remains incompletely understood. Here, we identify two evolutionarily conserved arginine residues, R100 and R101, located proximal to the active site, as critical determinants of duplex unwinding. Charge-conserving substitutions of these residues with lysine (R100K and R101K) markedly impair Xrn1's exonuclease activity, with R101K exhibiting a more severe functional defect. These effects are particularly pronounced on structured substrates, including RNA-DNA hybrids, implicating the local electrostatic environment in facilitating duplex destabilization via tight gripping 5' overhangs. Single-molecule Förster resonance energy transfer measurements reveal that Xrn1 unwinds duplexes in discrete steps, each corresponding to the melting of ~8-9 base pairs. Together, these findings uncover a charge-dependent mechanism of RNA duplex unwinding and establish distinct roles for conserved active site residues in modulating Xrn1's processivity on structured substrates.

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Cite This Study

Rhee et al. (2026) studied this question.

synapsesocial.com/papers/69b25abe96eeacc4fcec8af4https://doi.org/10.1093/nar/gkag170
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