Exogenous dsRNA made accessible to Dicer by two eukaryotic RNA-dependent RNA polymerases in Paramecium tetraurelia

Marcello Pirritano1, Johannes Buescher2,3, Pauline Staubach1,4

  • 1Molecular Cell Biology and Microbiology, Faculty for Mathematics and Natural Sciences, Wuppertal University, Wuppertal, Germany.

Communications Biology
|January 8, 2026
PubMed

Insights

Two RNA-dependent RNA polymerases (RDRs) in Paramecium are essential for initiating RNA interference (RNAi) by replicating exogenous double-stranded RNA (dsRNA) before Dicer cleavage, revealing novel functions.

Area of Science:

  • Molecular Biology
  • Genetics
  • Cell Biology

Background:

  • Cells must distinguish self from non-self RNA to combat infections and maintain integrity.
  • RNA-dependent RNA polymerases (RDRs) typically amplify RNA interference (RNAi) signals by producing secondary small interfering RNAs (siRNAs).

Purpose of the Study:

  • To investigate the function of RDRs in recognizing and processing exogenous RNA in Paramecium.
  • To characterize the initial steps of RNAi triggered by foreign RNA in a novel experimental system.

Main Methods:

  • Development of a dextran nanoparticle-based system to deliver double-stranded RNA (dsRNA) into Paramecium cells via phagocytosis.
  • Small RNA sequencing to analyze siRNAs derived from exogenous RNA and RDR transcripts.

Main Results:

  • Dicer cannot directly cleave exogenous dsRNA in Paramecium.
  • RDR1 and RDR2 are required for the initial dsRNA processing, paradoxically by replicating the dsRNA before Dicer can act.
  • The system also processes exogenous single-stranded RNA (ssRNA), with RDR2 being non-essential for this conversion.

Conclusions:

  • Paramecium RDRs have unique functions distinct from those in animals, plants, and fungi.
  • RDR-associated complexes regulate the entry of exogenous RNA into the RNAi pathway, expanding the known roles of RDRs.

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