A DNA break-5mC cycle activates transposable elements in <i>Arabidopsis</i>

W Wenjie Liang (School of Life Sciences, Fudan University) H Haokai Cao (School of Life Sciences, Fudan University) C Chen Zou X Xindong Tong (School of Life Sciences, Fudan University) Y Yongbo Ma (School of Life Sciences, Fudan University) Y Yitong Shen (School of Life Sciences, Fudan University) X Xue Han (State Key Laboratory of Advanced Chemical Power Sources, Frontiers Science Center for New Organic Matter, Key Laboratory of Advanced Energy Materials Chemistry (Ministry of Education), Academy for Advanced Interdisciplinary Studies, College of Chemistry) Y Yilin Zhang (Eastern Institute for Advanced Study) B Binglian Zheng (State Key Laboratory of Genetics and Development of Complex Phenotypes, School of Life Sciences, Fudan University, Shanghai, China.) J Jinchao Li (School of Life Sciences, Fudan University)

Abstract

Plant genomic and epigenomic integrity are perpetually threatened by exogenous and endogenous DNA damage. However, the interplay between DNA damage, DNA methylation (5mC), and transposable element (TE) activity remains poorly understood. Here, we demonstrate that defective single-strand break (SSB) repair acts as a potent trigger for genome-wide TE derepression and extensive de novo DNA methylation in Arabidopsis . Mutations in ZDP/APE2, which encode conserved DNA 3’-end repair enzymes, impair the repair of 3’-blocked SSBs arising from base excision repair, ultimately leading to widespread TE activation. Concurrently, inefficient SSB repair activates the ATR–SOG1-mediated DNA damage response, which enhances the RNA-directed DNA methylation (RdDM) pathway to counteract TE activation by depositing 5mC. Paradoxically, the resulting methylation is excised by the DNA demethylase ROS1—a process that itself generates 3’-blocked SSBs requiring resolution by ZDP/APE2. In zdp ape2 mutants, ROS1-mediated 5mC excision produces additional SSBs, which in turn reactivate RdDM. This establishes a self-sustaining SSB–5mC cycle that perpetuates DNA damage and drives massive TE activation in the mutant. Our findings reveal a critical mechanistic link between SSB repair, DNA methylation dynamics, and TE derepression, positioning defective SSB repair as a major inducer of epigenomic instability.

Article Details

Volume / Issue Vol. 123, Issue 28
Published July 14, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (10)

W

Wenjie Liang

School of Life Sciences, Fudan University

H

Haokai Cao

School of Life Sciences, Fudan University

C

Chen Zou

X

Xindong Tong

School of Life Sciences, Fudan University

Y

Yongbo Ma

School of Life Sciences, Fudan University

Y

Yitong Shen

School of Life Sciences, Fudan University

X

Xue Han

State Key Laboratory of Advanced Chemical Power Sources, Frontiers Science Center for New Organic Matter, Key Laboratory of Advanced Energy Materials Chemistry (Ministry of Education), Academy for Advanced Interdisciplinary Studies, College of Chemistry

Y

Yilin Zhang

Eastern Institute for Advanced Study

B

Binglian Zheng

State Key Laboratory of Genetics and Development of Complex Phenotypes, School of Life Sciences, Fudan University, Shanghai, China.

J

Jinchao Li

School of Life Sciences, Fudan University