9KFX
Crystal structure of synthetic PPR-DYW in complex with target RNA
Summary for 9KFX
| Entry DOI | 10.2210/pdb9kfx/pdb |
| Descriptor | Synthetic PPR-DYW protein, rpoA RNA (5'-R(*UP*UP*AP*CP*AP*CP*GP*UP*GP*CP*AP*AP*AP*AP*UP*CP*UP*G)-3'), ZINC ION, ... (5 entities in total) |
| Functional Keywords | rna binding protein, pentatricopeptide repeat deaminase, plant rna editing rna complex, hydrolase, hydrolase-rna complex, hydrolase/rna |
| Biological source | synthetic construct More |
| Total number of polymer chains | 4 |
| Total formula weight | 148525.85 |
| Authors | Teramoto, T.,Okada, A.,Urushihara, R.,Gutmann, B.,Ichinose, M.,Yagi, Y.,Nakamura, T.,Kakuta, Y. (deposition date: 2024-11-07, release date: 2025-11-12, Last modification date: 2026-07-15) |
| Primary citation | Teramoto, T.,Urushihara, R.,Aoyama, R.,Okada, A.,Ichinose, M.,Yagi, Y.,Nakamura, T.,Gutmann, B.,Kakuta, Y. Structural basis of plant organelle C-to-U RNA editing by PPR-DYW proteins. Nat Commun, 17:-, 2026 Cited by PubMed Abstract: Plants possess a unique C-to-U RNA editing mechanism mediated by PPR-DYW proteins, wherein the PPR domain recognizes specific RNA sequences while the DYW deaminase domain precisely edits the target C base-a process essential for functional protein expression in plant chloroplasts and mitochondria. The coordination of these two domains is considered crucial for precise RNA editing. In nature, this site-specific and precise base editing by PPR-DYW proteins distinguishes them from other base-editing deaminases. However, the absence of structures containing both PPR and DYW domains has limited our understanding of the precise RNA-editing mechanism of PPR-DYW proteins. Here, we present crystal structures of the consensus PPR-DYW (consPPR-DYW) protein, a representative of the PPR-DYW proteins, in both RNA-free and target RNA-bound states. Comparison between these states demonstrates domain movements upon target RNA binding, whereby the PPR domain accommodates the upstream sequence of the target C base in the proper conformation for editing while the DYW domain is optimally positioned for precise C-to-U conversion. These results, combined with comprehensive biochemical analyses, provide the foundation for a mechanistic model that explains the coordinated action of the PPR and DYW domains in achieving precise C-to-U editing. PubMed: 42045200DOI: 10.1038/s41467-026-72391-y PDB entries with the same primary citation |
| Experimental method | X-RAY DIFFRACTION (2.7 Å) |
Structure validation
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