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Updated: Jan 13, 2026

Artificial RNA Polymerase II Elongation Complexes for Dissecting Co-transcriptional RNA Processing Events
Published on: May 13, 2019
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.
Abstract:
Discrimination of self from non-self RNA is a critical requirement for any cell to respond to infections and to maintain cellular integrity. We report novel functions for two RNA-dependent RNA polymerases (RDRs) in Paramecium. In RNAinterference (RNAi), RDRs are normally involved in the production of large amounts of secondary small interfering RNAs (siRNAs). To characterize the function of RDRs in context of exogenous RNA recognition, we developed a novel double-stranded RNA (dsRNA) application system using dextran nanoparticles to deliver heteroduplex dsRNA to cells as food particles, mimicking the natural phagosomal entry. Small RNA sequencing allows to dissect siRNAs produced from exogenous RNA or RDR transcripts. Contrary to expectations, our data show that Dicer is unable to directly cleave exogenous dsRNA while two RDRs, RDR1 and RDR2, are required for the initial steps of dsRNA-induced RNAi. Paradoxically, these two RDRs must replicate dsRNA before Dicer cleavage. This system works efficiently also with exogenous single-stranded RNA (ssRNA), although RDR2 is dispensable for ssRNA conversion. The function of RDRs is in contrast to that in animals, plants and fungi and extends the functional diversity of these polymerases as RDR-associated complexes appear to control the entry of food RNA into the RNAi machinery.
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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