ArticleNature communications2024
CLSY docking to Pol IV requires a conserved domain critical for small RNA biogenesis and transposon silencing.
Article in Nature communications, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 8 papers.
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Who cites it
8 citing papers in PubMed.
- Presence and function of small RNAs during plant reproduction.RNA biology · 2026Review
- Gene Inactivation in Transgenic Plants-A Unique Model for Studying Epigenetic Regulation of Gene Expression.Plants (Basel, Switzerland) · 2026Review
- Loss of function of chromatin remodeler OsCLSY4 leads to RdDM-mediated mis-expression of endosperm-specific genes affecting grain qualities.PLoS genetics · 2025Article
- Transcription factors instruct DNA methylation patterns in plant reproductive tissues.Nature cell biology · 2025Article
- Regulatory Landscapes of Non-Coding RNAs During Drought Stress in Plants.International journal of molecular sciences · 2025Review
- Molecular Mechanisms Underlying the Establishment, Maintenance, and Removal of DNA Methylation in Plants.Annual review of plant biology · 2025Review
- CLSY docking to Pol IV requires a conserved domain critical for small RNA biogenesis and transposon silencing.Nature communications · 2024Article
- Transcription elongation of the plant RNA polymerase IV is prone to backtracking.Science advances · 2024Article
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Abstract
Eukaryotes must balance the need for gene transcription by RNA polymerase II (Pol II) against the danger of mutations caused by transposable element (TE) proliferation. In plants, these gene expression and TE silencing activities are divided between different RNA polymerases. Specifically, RNA polymerase IV (Pol IV), which evolved from Pol II, transcribes TEs to generate small interfering RNAs (siRNAs) that guide DNA methylation and block TE transcription by Pol II. While the Pol IV complex is recruited to TEs via SNF2-like CLASSY (CLSY) proteins, how Pol IV partners with the CLSYs remains unknown. Here, we identified a conserved CYC-YPMF motif that is specific to Pol IV and is positioned on the complex exterior. Furthermore, we found that this motif is essential for the co-purification of all four CLSYs with Pol IV, but that only one CLSY is present in any given Pol IV complex. These findings support a "one CLSY per Pol IV" model where the CYC-YPMF motif acts as a CLSY-docking site. Indeed, mutations in and around this motif phenocopy pol iv null and clsy quadruple mutants. Together, these findings provide structural and functional insights into a critical protein feature that distinguishes Pol IV from other RNA polymerases, allowing it to promote genome stability by targeting TEs for silencing.
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