Two Interacting Proteins Are Necessary for the Editing of the NdhD-1 Site in Arabidopsis Plastids

Author:

Boussardon Clément12,Salone Véronique12,Avon Alexandra1,Berthomé Richard1,Hammani Kamel2,Okuda Kenji3,Shikanai Toshiharu3,Small Ian2,Lurin Claire1

Affiliation:

1. Unité de Recherche en Génomique Végétale, Unité Mixte de Recherche, Institut National de la Recherche Agronomique/Université Evry Val d'Essonne/Equipe de Recherche Labellisée, Centre National de la Recherche Scientifique 91057, 91057 Evry cedex, France

2. Australian Research Council Centre of Excellence in Plant Energy Biology, University of Western Australia, Crawley, Western Australia 6009, Australia

3. Department of Botany, Graduate School of Science, Kyoto University, Kyoto 606-8502, Japan

Abstract

Abstract After transcription, mRNA editing in angiosperm chloroplasts and mitochondria results in the conversion of cytidine to uridine by deamination. Analysis of Arabidopsis thaliana mutants affected in RNA editing have shown that many pentatricopeptide repeat proteins (PPRs) are required for specific cytidine deamination events. PPR proteins have been shown to be sequence-specific RNA binding proteins allowing the recognition of the C to be edited. The C-terminal DYW domain present in many editing factors has been proposed to catalyze C deamination, as it shows sequence similarities with cytidine deaminases in other organisms. However, many editing factors, such as the first to be discovered, CHLORORESPIRATORY REDUCTION4 (CRR4), lack this domain, so its importance has been unclear. Using a reverse genetic approach, we identified DYW1, an RNA editing factor acting specifically on the plastid ndhD-1 editing site recognized by CRR4. Unlike other known editing factors, DYW1 contains no identifiable PPR motifs but does contain a clear DYW domain. We were able to show interaction between CRR4 and DYW1 by bimolecular fluorescence complementation and to reconstitute a functional chimeric CRR4-DYW1 protein complementing the crr4 dyw1double mutant. We propose that CRR4 and DYW1 act together to edit the ndhD-1 site.

Publisher

Oxford University Press (OUP)

Subject

Cell Biology,Plant Science

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