ARGONAUTE1-binding Tudor domain proteins function in small interfering RNA production for RNA-directed DNA methylation

Author:

Takei Takahito12ORCID,Tsukada Michio3,Tamura Kentaro4ORCID,Hara-Nishimura Ikuko5ORCID,Fukao Yoichiro6ORCID,Kurihara Yukio37ORCID,Matsui Minami78ORCID,Saze Hidetoshi9ORCID,Tsuzuki Masayuki10ORCID,Watanabe Yuichiro3ORCID,Hamada Takahiro2ORCID

Affiliation:

1. Department of Biological Sciences, Graduate School of Science, The University of Tokyo , Tokyo 113-0033 , Japan

2. Department of Bioscience, Faculty of Life Science, Okayama University of Science , Okayama 700-0005 , Japan

3. Department of Life Sciences, Graduate School of Arts and Sciences, The University of Tokyo , Tokyo 153-8902 , Japan

4. Department of Environmental and Life Sciences, School of Food and Nutritional Sciences, University of Shizuoka , Shizuoka 422-8526 , Japan

5. Faculty of Science and Engineering, Konan University , Kobe 658-8501 , Japan

6. Graduate School of Life Science, Ritsumeikan University , Kusatsu, Shiga 525-8577 , Japan

7. Synthetic Genomics Research Group, RIKEN Center for Sustainable Resource Science , Yokohama, Kanagawa 230-0045 , Japan

8. Graduate School of Nanobioscience, Department of Life and Environmental System Science, Yokohama City University , Yokohama, Kanagawa 230-0045 , Japan

9. Plant Epigenetics Unit, Okinawa Institute of Science and Technology Graduate University , Okinawa 904-0495 , Japan

10. Faculty of Agriculture and Marine Science, Kochi University , Kochi 783-8502 , Japan

Abstract

Abstract Transposable elements (TEs) contribute to plant evolution, development, and adaptation to environmental changes, but the regulatory mechanisms are largely unknown. RNA-directed DNA methylation (RdDM) is 1 TE regulatory mechanism in plants. Here, we identified that novel ARGONAUTE 1 (AGO1)-binding Tudor domain proteins Precocious dissociation of sisters C/E (PDS5C/E) are involved in 24-nt siRNA production to establish RdDM on TEs in Arabidopsis thaliana. PDS5 family proteins are subunits of the eukaryote-conserved cohesin complex. However, the double mutant lacking angiosperm-specific subfamily PDS5C and PDS5E (pds5c/e) exhibited different developmental phenotypes and transcriptome compared with those of the double mutant lacking eukaryote-conserved subfamily PDS5A and PDS5B (pds5a/b), suggesting that the angiosperm-specific PDS5C/E subfamily has a unique function in angiosperm plants. Proteome and imaging analyses revealed that PDS5C/E interact with AGO1. The pds5c/e double mutant had defects in 24-nt siRNA accumulation and CHH DNA methylation on TEs. In addition, some lncRNAs that accumulated in the pds5c/e mutant were targeted by AGO1-loading 21-nt miRNAs and 21-nt siRNAs. These results indicate that PDS5C/E and AGO1 participate in 24-nt siRNA production for RdDM in the cytoplasm. These findings indicate that angiosperm plants evolved a new regulator, the PDS5C/E subfamily, to control the increase in TEs during angiosperm evolution.

Funder

JSPS research fellowship

JSPS KAKENHI

Human Frontier Science Program

JST-PRESTO

JST-CREST

Publisher

Oxford University Press (OUP)

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