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Updated: Jun 1, 2026

Inducible, Cell Type-Specific Expression in Arabidopsis thaliana Through LhGR-Mediated Trans-Activation
Published on: April 19, 2019
Programmed induction of endoreduplication by DNA double-strand breaks in Arabidopsis
Sumiko Adachi1, Kazunori Minamisawa, Yoko Okushima
1Graduate School of Biological Sciences, Nara Institute of Science and Technology, 8916-5 Takayama, Ikoma, Nara 630-0192, Japan.
Abstract:
Genome integrity is continuously threatened by external stresses and endogenous hazards such as DNA replication errors and reactive oxygen species. The DNA damage checkpoint in metazoans ensures genome integrity by delaying cell-cycle progression to repair damaged DNA or by inducing apoptosis. ATM and ATR (ataxia-telangiectasia-mutated and -Rad3-related) are sensor kinases that relay the damage signal to transducer kinases Chk1 and Chk2 and to downstream cell-cycle regulators. Plants also possess ATM and ATR orthologs but lack obvious counterparts of downstream regulators. Instead, the plant-specific transcription factor SOG1 (suppressor of gamma response 1) plays a central role in the transmission of signals from both ATM and ATR kinases. Here we show that in Arabidopsis, endoreduplication is induced by DNA double-strand breaks (DSBs), but not directly by DNA replication stress. When root or sepal cells, or undifferentiated suspension cells, were treated with DSB inducers, they displayed increased cell size and DNA ploidy. We found that the ATM-SOG1 and ATR-SOG1 pathways both transmit DSB-derived signals and that either one suffices for endocycle induction. These signaling pathways govern the expression of distinct sets of cell-cycle regulators, such as cyclin-dependent kinases and their suppressors. Our results demonstrate that Arabidopsis undergoes a programmed endoreduplicative response to DSBs, suggesting that plants have evolved a distinct strategy to sustain growth under genotoxic stress.
Insights
Plants utilize a programmed endoreduplication response to DNA double-strand breaks (DSBs) via ATM-SOG1 and ATR-SOG1 pathways, promoting cell growth under genotoxic stress.
Area of Science:
- Plant molecular biology
- Cell cycle regulation
- DNA damage response
Background:
- Genome integrity is vital and threatened by DNA damage.
- Metazoans use DNA damage checkpoints involving ATM/ATR kinases and downstream regulators.
- Plants possess ATM/ATR orthologs but rely on the plant-specific transcription factor SOG1 for signal transduction.
Purpose of the Study:
- To investigate the role of DNA double-strand breaks (DSBs) in inducing endoreduplication in Arabidopsis.
- To elucidate the signaling pathways involved in the plant's response to DSBs.
- To understand how plants sustain growth under genotoxic stress.
Main Methods:
- Treatment of Arabidopsis root, sepal, and suspension cells with DSB inducers.
- Analysis of cell size and DNA ploidy.
- Investigation of ATM-SOG1 and ATR-SOG1 signaling pathways.
Main Results:
- DNA double-strand breaks (DSBs), but not replication stress, induce endoreduplication in Arabidopsis cells.
- Increased cell size and DNA ploidy were observed upon DSB induction.
- Both ATM-SOG1 and ATR-SOG1 pathways transmit DSB signals and are sufficient for endocycle induction.
- These pathways regulate distinct sets of cell-cycle regulators.
Conclusions:
- Arabidopsis exhibits a programmed endoreduplication response to DSBs.
- The ATM-SOG1 and ATR-SOG1 pathways mediate this response.
- Plants have evolved a unique strategy to maintain growth despite genotoxic stress.
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