Synergistic action of the Arabidopsis spliceosome components PRP39a and SmD1b in promoting posttranscriptional transgene silencing

Author:

Bazin Jérémie1ORCID,Elvira-Matelot Emilie2ORCID,Blein Thomas1ORCID,Jauvion Vincent2ORCID,Bouteiller Nathalie2ORCID,Cao Jun3ORCID,Crespi Martin D1ORCID,Vaucheret Hervé2ORCID

Affiliation:

1. Institute of Plant Sciences Paris-Saclay (IPS2), CNRS, INRAE, Universités Paris-Sud , Evry, Paris-Diderot, Sorbonne Paris-Cité, Paris-Saclay, Bâtiment 630, 91405 Orsay , France

2. Université Paris-Saclay, INRAE, AgroParisTech, Institut Jean-Pierre Bourgin (IJPB) , 78000 Versailles , France

3. Department of Molecular Biology, Max Planck Institute for Developmental Biology , Spemannstrasse 35, 72076 Tübingen , Germany

Abstract

Abstract Besides regulating splicing, the conserved spliceosome component SmD1 (Small nuclear ribonucleoprotein D1)b promotes posttranscriptional silencing of sense transgenes (S-PTGS [post-transcriptional genesilencing]). Here, we show that the conserved spliceosome component PRP39 (Pre-mRNA-processing factor 39)a also plays a role in S-PTGS in Arabidopsis thaliana. However, PRP39a and SmD1b actions appear distinct in both splicing and S-PTGS. Indeed, RNAseq-based analysis of expression level and alternative splicing in prp39a and smd1b mutants identified different sets of deregulated transcripts and noncoding RNAs. Moreover, double mutant analyses involving prp39a or smd1b and RNA quality control (RQC) mutants revealed distinct genetic interactions for SmD1b and PRP39a with nuclear RQC machineries, suggesting nonredundant roles in the RQC/PTGS interplay. Supporting this hypothesis, a prp39a smd1b double mutant exhibited enhanced suppression of S-PTGS compared to the single mutants. Because the prp39a and smd1b mutants (i) showed no major changes in the expression of PTGS or RQC components or in small RNA production and (ii) do not alter PTGS triggered by inverted-repeat transgenes directly producing dsRNA (IR-PTGS), PRP39a, and SmD1b appear to synergistically promote a step specific to S-PTGS. We propose that, independently from their specific roles in splicing, PRP39a and SmD1b limit 3′-to-5′ and/or 5′-to-3′ degradation of transgene-derived aberrant RNAs in the nucleus, thus favoring the export of aberrant RNAs to the cytoplasm where their conversion into double-stranded RNA (dsRNA) initiates S-PTGS.

Publisher

Oxford University Press (OUP)

Subject

Cell Biology,Plant Science

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